Chapter 23 – Climate change: effects and implications

The coastal zone is an epicenter of climate change impacts, including rising sea levels, an increase in sea temperature, and a decrease in salinity through precipitation and ice melt. In addition, changes in carbon chemistry will result in the “acidification” of seawater. Direct physiological effects of extreme weather events will likely cause some sub-optimal changes in Manila clam abundance, with implications for aquaculture production, especially in warmer waters such as the Adriatic and the west coast of the Korean penisula. Indirect effects on food and predator species and synergistic impacts of multiple pollutants may also prove influential. Currently predicted acidification will, in itself, be within the tolerances of R. philippinarum, although it may contribute to increased oxidative stress and energetic demand, especially when in combination with other challenges. Overall, while Manila clam distributions, locally, regionally, and globally, will adjust, the species is considered resilient within temperate conditions and is expected to extend its global distribution northwards in Alaska, Europe, and probably Siberia.

Continue reading ‘Chapter 23 – Climate change: effects and implications’

Variability of carbon chemistry at the marine protected area of Savaia Village, Upolu Island, Samoa

The Pacific Small Island Developing States (Pacific SIDS) are at the forefront of climate change impacts, yet these effects remain understudied and therefore poorly understood. Ocean acidification (OA) research in Samoa is in its infancy, with a new OA project established to monitor seawater carbon chemistry in coastal ecosystems. The study measured seawater carbon chemistry—including pH, dissolved carbon dioxide and total alkalinity—within the marine protected area (MPA) of Savaia, Lefaga, on Upolu Island, Samoa. Sampling was conducted over twelve months at four locations within the MPA (Site 1, Site 2, Site 3, Site 4), focusing on spatio-temporal variability in pH, temperature and total alkalinity. Measurements were obtained using water samples and an iSAMI pH sensor. The mean pH recorded was 8.06 ± 0.07, while the mean total alkalinity was 1955.1 ± 25 µmol∙kg−1, which is lower than the typical value of 2305 µmol∙kg−1 observed in tropical environments. This decline in total alkalinity and the corresponding low pH could be a potential source of acidification to downstream coastal ecosystems with potential implications for coral reefs, biodiversity and fishery livelihoods.

Continue reading ‘Variability of carbon chemistry at the marine protected area of Savaia Village, Upolu Island, Samoa’

Combined effect of ocean warming and acidification on the sea pen “Pennatula phosphorea”

Anthropogenic CO2 emissions are expected to increase ocean acidity and temperature over the coming century. Under the Shared Socioeconomic Pathway (SSP) 5–8.5 scenario, mean surface ocean pH is projected to decrease by approximately 0.39 units, while sea surface temperature is expected to rise by 2–4 °C between 2010 and 2100. Sea pens (Octocorallia) are important bioindicators of soft-sediment habitat quality and associated benthic communities; however, their responses to these stressors remain considerably less studied than those of their hexacoral counterparts.

This thesis investigates the individual and combined effects of ocean acidification and warming, based on SSP5–8.5 projections, on the sea pen Pennatula phosphorea (Linnaeus, 1758), collected from the Swedish Gullmarsfjord. During winter and summer 2025, four pH treatments (8.0, control; 7.8, present-day low value; 7.4, projected low value for 2100; and 7.0, extreme scenario) and four temperature treatments (7.7 °C, winter control; 14 °C, summer control; 17 °C, present-day high value; and 20 °C, projected high value for 2100) were assessed. Response variables included behavioural traits (colony burrowing, colony inflation, polyp opening and bioluminescence emission), survival, and bioluminescence substrate levels (coelenterazine concentration and maximum light intensity, Lmax). Three hypotheses were tested: (1) ocean acidification and warming would negatively affect all response variables, with stronger effects under combined exposure; (2) prolonged exposure would result in either progressive deterioration or acclimation of behavioural traits; and (3) larger individuals would be less affected by stressors than smaller individuals.

The effects of acidification and warming varied among response variables, seasons, and whether stressors were applied individually or in combination. Overall, pH 7.8 produced few significant effects, except on burrowing behaviour, whereas pH 7.4 and 7.0 generated effects ranging from negligible (p > 0.1) to highly significant (p < 0.01), generally with greater impacts at pH 7.0. Similarly, temperatures of 17 and 20 °C elicited responses ranging from negligible to highly significant, with the strongest effects observed at 20 °C for quantitative measures of bioluminescence substrates. Combined exposure generally amplified the observed effects, suggesting that tolerance to one stressor may be compromised by the presence of another. No consistent evidence of behavioural acclimation or progressive deterioration was detected over time. Contrary to the initial hypothesis, larger individuals appeared more susceptible to environmental stressors than smaller individuals.

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Ocean acidification is just one of five stressors dissolving shellfish from inside out

New mechanistic review shows warming, pollution, and pH compete for same ATP pool powering every shell

Photo: Dave Meckler/unsplash.com

A review published Monday in Frontiers in Marine Science is the first to map exactly which molecular components inside a shellfish shell each ocean stressor attacks — and to show why combining them produces damage no single-stressor model can predict. Ocean acidification suppresses one set of enzymes. Warming shunts cellular energy toward heat-shock proteins. Heavy metal contamination poisons crystal-growth sites through a different mechanism entirely. A common anti-inflammatory drug, at concentrations already detectable in urban coastal waters, destroys 99 percent of shellfish larvae in 96 hours when paired with even moderately acidified seawater. And all five stressors draw from the same limited pool of ATP — the cellular energy currency that powers shell construction. When they hit simultaneously, as they do in every real coastal environment, the damage can tip past any threshold the animal can compensate for.

The paper — authored by Wenxiao Guo, Hao Li, Dongfang Li, Peiyao Sun, and Ran Zhao of Shenzhen MSU-BIT University — synthesizes research covering literature through May 2026 across bivalves (oysters, mussels, clams, scallops) and gastropods (snails, abalone), the groups that form the commercial and ecological backbone of global shellfish aquaculture. Its central contribution is a conditional hierarchical response framework: a model linking ionoregulatory and acid-base disruptions at the molecular level to defects in crystal microstructure to compromised shell physical properties — while explicitly accounting for compensatory mechanisms, nonlinear thresholds, species-specific strategies, and life-stage-specific outcomes. For the aquaculture industry, the framework offers something more immediately actionable: a map of why current adaptation strategies, almost all oriented around single-stressor OA response, may be systematically underestimating the combined burden their animals are already carrying.

Shell Construction Is Precision Molecular Clockwork

To understand what each stressor breaks, it helps to understand what has to work.

Molluscan shells are built from calcium carbonate, which makes up more than 95 percent of their dry mass, plus a small but critical fraction of organic matrix — proteins, polysaccharides, and lipids that orchestrate how crystals form, stack, and align. At the center of the process is carbonic anhydrase (CA), an enzyme that converts carbon dioxide and water into bicarbonate ions — the raw material for calcium carbonate deposition. Another key protein, nacrein, simultaneously catalyzes bicarbonate availability and inhibits crystal overgrowth through a specialized repeat domain, giving the organism fine control over shell architecture. The shell matrix proteins Aspein and N16 govern crystal nucleation and orientation in the prismatic and nacreous layers respectively. A structural polysaccharide, chitin, provides the scaffold on which crystals nucleate and grow. Calcium ions reach the crystallization site via Ca²⁺-ATPase, an active transporter that requires ATP to run.

This is not a passive chemical precipitation process. It is a biologically orchestrated system with multiple interdependent molecular actors. When any one of them is disrupted, the effects propagate upward — from abnormal gene expression to defects in crystal microstructure to shells that are measurably softer, more porous, or structurally misshapen. The phylum Mollusca encompasses more than 70,000 species; the review focuses on bivalves and gastropods, which together form the commercial and ecological centerpiece of global shellfish systems.

What Makes Ocean Acidification Different From — and Worse With — Every Other Stressor

Ocean acidification (OA) operates through three simultaneous routes: it lowers the carbonate saturation of seawater, making it thermodynamically harder to deposit calcium carbonate; it acidifies body fluids, forcing animals to spend metabolic energy on acid-base regulation that would otherwise fund shell construction; and it directly suppresses the genes and enzymes that build shells.

The ocean has already absorbed enough anthropogenic CO₂ to lower average ocean pH by approximately 0.11 units from a preindustrial baseline of roughly 8.20. Model projections indicate a further drop of 0.3–0.4 pH units by 2100, with declines of up to 0.7 units possible by 2300. These global averages substantially understate regional variability in coastal and estuarine zones — precisely where most shellfish aquaculture occurs.

In the blue mussel Mytilus edulis, carbonic anhydrase activity remained stable at 550 µatm CO₂ but dropped significantly at 750 µatm. In the pearl oyster Pinctada fucata, shell hardness, calcium content, and total weight were unchanged at pH 8.10 and 7.70 but collapsed at pH 7.40, suggesting OA damage can arrive not as a gradual slide but as an abrupt deterioration once a critical saturation threshold is crossed. Some species show mechanical weakening even before carbonate saturation falls below the dissolution threshold: in the thick-shelled mussel Mytilus coruscus, both whole-shell compressive strength and shell closure force fell significantly at pH 7.80 — well above the level at which aragonite becomes thermodynamically unstable — apparently because physiological acid-base disorder drives the damage before the chemistry does.

Shell architecture also shapes vulnerability. Under identical acidification stress, a gastropod (Tegula funebralis) whose outer layer consists of a fibrous prismatic calcite structure exposing many crystal edges to seawater lost 14–25% of its shell density. A gastropod (Nucella ostrina) armored with a dense homogeneous calcite layer lost only 8–11%. The geometry of crystals, not just their chemistry, determines how quickly an acidified ocean erodes them.

Larvae face the sharpest risks. In larval bay scallops (Argopecten irradians), shell length was reduced by 11.5% at pH 7.39, detectable within just 12 hours of exposure. Larvae that experienced early growth deficits did not subsequently catch up, suggesting that OA imposes a lasting developmental penalty rather than a temporary one. It was the early-stage death toll — larval mortality reaching 80 percent in Pacific Northwest hatcheries between 2005 and 2009 — that first brought OA’s shellfish consequences into sharp commercial focus, and led to the development of real-time aragonite saturation monitoring systems now standard in the industry.

Continue reading ‘Ocean acidification is just one of five stressors dissolving shellfish from inside out’

Environmental regulation and disruption of shell biomineralization in bivalves and gastropods: a mechanistic review

Molluscan shells are increasingly threatened by a complex array of environmental stressors—climate-related drivers, changes in seawater chemistry, contaminants, and biotic cues. This review provides a mechanistic synthesis of how these stressors disrupt the biomineralization process across life stages. We develop a conditional hierarchical response framework from the reviewed evidence. The framework links ionoregulatory and acid-base disturbances with molecular, microstructural, and shell-level responses, while allowing for compensatory, nonlinear, species-specific, and life-stage-specific outcomes. This molecular disruption manifests as defects in calcium carbonate (CaCO3) crystalline microstructure, which may in turn compromise shell macro-scale physical properties (strength, hardness, growth). We synthesize combined and context-dependent effects of co-occurring stressors and distinguish formally tested interactions from qualitative comparisons of combined treatments. Future research must leverage integrated multi-omics, advanced in vivo imaging, and multi-stressor experimental designs to unravel candidate molecular and physiological thresholds and predict adaptive potential. This framework may help identify testable mechanisms, evidence gaps, and context-dependent vulnerabilities relevant to conservation.

Highlights

  • A conditional framework links molecular, microstructural, and shell-level responses.
  • Early stages often show high sensitivity, although direct ontogenetic comparisons remain limited.
  • Energy limitation is a recurrent, but often indirectly inferred, physiological constraint.
Continue reading ‘Environmental regulation and disruption of shell biomineralization in bivalves and gastropods: a mechanistic review’

Parental CO₂-vent history does not improve larval performance of the sea urchin Arbacia lixula under copper and acidification

CO₂-driven ocean acidification (OA) threatens marine calcifiers, while coastal ecosystems face increasing trace-metal contamination; their combined effects, and the modulating role of parental environmental history, remain poorly understood. We used the sea urchin Arbacia lixula from a naturally acidified CO₂ vent and a nearby ambient site at Ischia (Tyrrhenian Sea) to test how chronic adult exposure to low pH shapes larval responses to copper and low pH. Offspring from ambient (pH ~ 8.1) and vent (pH ~ 7.7) adults were reared for 48 h in a fully crossed design (two pH levels × three copper concentrations: 0, 5, 20 µg L⁻¹). At 24 hpf, development was dominated by parental history: ambient-derived larvae advanced rapidly, whereas vent-derived larvae showed higher arrest and slower progression, especially under low pH and high copper. By 48 hpf these effects diminished and pH and its interaction with copper became dominant, with both origins converging toward the echinopluteus stage. Nonetheless, malformations rose sharply under low pH regardless of copper, and skeletal-rod morphometrics revealed additional copper-related effects invisible to binary abnormality classifications. Chronic parental exposure did not enhance larval tolerance and sometimes increased sensitivity, underscoring the need to integrate multiple stressors and parental legacy.

Continue reading ‘Parental CO₂-vent history does not improve larval performance of the sea urchin Arbacia lixula under copper and acidification’

The impact of ocean acidification on the sorption of trace metals by diatoms

Diatoms are a major phytoplankton group that plays a critical role in aquatic biogeochemical processes. Their metabolism relies on trace metals as cofactors for numerous enzymes, and changes in seawater pH may therefore influence metal sorption. Here, we investigated the effects of pH variability on diatom growth and trace-metal sorption using neutron activation analysis (NAA). Although NAA has rarely been applied to phytoplankton, we demonstrate its suitability for marine diatom samples. Overall, diatoms exposed to CO2 treatment exhibited higher cell abundance but lower intracellular elemental concentrations. In particular, Nitzschia navis-varingica showed significantly lower concentrations of Al, Ce, Co, Cr, Fe, Mg, Mn and Zn under the CO2 treatment. These trends are consistent with previous studies. For example, Zinc, which is a cofactor in many enzymes, plays a role in inorganic carbon acquisition; under lower pH, reduced enzymatic metal requirements likely explain the lower Zn concentrations observed. Nitzschia navis-varingica also had significantly lower levels of Co under lower pH. Both Thalassiosira pseudonana and Nitzschia navis-varingica showed lower Fe concentrations under CO2 treatment. As Iron is required for photosynthetic and respiratory processes that support the carbon-concentrating mechanism (CCM), reduced CCM activity at lower pH may decrease Fe demand. Overall, this study highlights NAA as a robust approach for quantifying metal sorption in marine organisms and provides new insight into the effects of ocean acidification on the growth and elemental composition of diatoms.

Continue reading ‘The impact of ocean acidification on the sorption of trace metals by diatoms’

Ocean acidification drives species-specific and time-dependent pigment responses in three phytoplankton taxa

Phytoplankton are primary producers in marine ecosystems and play a central role in biogeochemical cycles, yet their physiological responses to altered seawater pH vary among taxa and over time. Here, we examined the effects of sustained pH manipulation on pigment composition, growth, and dark respiration in three ecologically important phytoplankton taxa – a diatom (Pseudo-nitzschia spp.), a dinoflagellate (Heterocapsa pygmaea), and a haptophyte (Emiliania huxleyi) – during a 15-day controlled laboratory experiment. Cultures were maintained at pH 8.1, 7.8, and 7.5, representing present-day and enhanced acidification conditions. Responses to pH were species-specific and strongly time-dependent. Growth and cell-specific respiration rates showed relatively small and often transient differences among pH treatments, suggesting short-term metabolic adjustment under altered pH. In contrast, pigment composition exhibited clearer and more consistent pH-related responses, primarily expressed as shifts in temporal patterns rather than uniform directional changes. In Pseudo-nitzschia spp. and H. pygmaea, several key pigments displayed pronounced pH-dependent trajectories, whereas E. huxleyi showed greater temporal variability and weaker separation among pH treatments. Overall, these results demonstrate that photophysiological traits respond sensitively to sustained pH changes even when population-level growth and respiration remain comparatively stable, highlighting pigment composition as a potentially sensitive indicator of short-term phytoplankton acclimation to ocean acidification.

Continue reading ‘Ocean acidification drives species-specific and time-dependent pigment responses in three phytoplankton taxa’

Elevated pCO2 impairs overall byssus attachment strength in the blue mussel (Mytilus edulis) without altering byssus thread quality

Increasing atmospheric carbon dioxide (CO2) is driving global ocean acidification (OA). This process may threaten the persistence of bed-forming mussels by weakening the byssal system that anchors them to the seafloor. Here, blue mussels (Mytilus edulis) were exposed to present-day (∼460 ppm pCO2) normocapnic and projected end-century (∼1200 ppm pCO2) hypercapnic conditions for four weeks at 12 °C. Byssus production, thread morphology, whole-byssus mechanics and the underlying physiological condition index (CI) were quantified. Unlike previous studies, this study analysed the byssus as an intact functional unit. This approach better reflects its mechanical performance in situ. Median thread production fell by 50% under elevated pCO2 and the number of individuals producing no threads at all increased from 3% to 23% of the population. Thread diameter and plaque area were unaffected. Whole byssus tensile testing revealed a distinctive mechanical pattern (elastic loading, force plateau, and structural failure) regardless of environmental CO2 concentration. Whole byssus attachment strength scaled linearly with thread number in both treatments, and the mechanical work required to detach mussels under hypercapnia dropped by 42%. Elevated pCO2 reduced mussel condition index by 19% relative to the control, indicating an energetic burden. These results show that near-future ocean acidification weakens mussel attachment primarily by lowering individual physiological condition, which directly drives the reduction in total attachment energy, rather than by lowering individual thread quality. This likely results from a shift in energy use away from thread production, as seen in poorer mussel condition. As a result, mussels may become more prone to being dislodged by waves or predators. The findings of this study indicate that ocean acidification can reduce the overall strength of M. edulis beds, with important effects on rocky shore ecosystems and the viability of mussel farming in a changing climate.

Continue reading ‘Elevated pCO2 impairs overall byssus attachment strength in the blue mussel (Mytilus edulis) without altering byssus thread quality’

Shark responses to ocean acidification: physiological buffering, behavioural vulnerability, and comparative insights from teleost fishes

Highlights

  • Sharks maintain acid-base balance under elevated CO₂ via effective buffering.
  • Physiological compensation carries energetic costs that constrain aerobic scope.
  • Olfactory-mediated foraging is more OA-sensitive than baseline locomotor function.
  • Multi-stressor effects (warming + OA) amplify biological impacts across life stages.
  • Evidence is biased toward benthic species; pelagic sharks remain understudied.

Abstract

Ocean acidification (OA), driven by increasing atmospheric carbon dioxide (CO₂), is a major component of global ocean change with widespread implications for marine organisms. Sharks (elasmobranchs) are often assumed to be relatively resilient to OA due to their distinctive physiology, including strong acid–base regulation and urea-based osmoconformation. However, empirical evidence evaluating this assumption remains limited and fragmented. This review synthesizes current knowledge on the physiological, behavioural, and sensory responses of sharks to OA within a comparative framework that incorporates insights from teleost fishes. A systematic literature search following PRISMA guidelines identified studies examining OA effects across shark species and life stages. Available evidence indicates that sharks generally maintain extracellular acid-base balance under elevated CO₂, demonstrating effective physiological buffering. However, this compensation is not without cost. Energetic trade-offs, reduced aerobic scope under multi-stressor conditions, and alterations in metabolic and oxidative responses have been reported. Behavioural and sensory-mediated processes, particularly olfactory-driven foraging, appear more sensitive to OA, with impairments emerging even in the absence of obvious physiological failure. Responses are highly species-specific and often amplified by co-occurring stressors such as warming. Despite these findings, current data are strongly biased toward small, benthic species, with limited representation of pelagic taxa and long-term responses. Sharks cannot be considered uniformly resilient to OA; rather, their responses are context-dependent, energetically constrained, and potentially consequential at population and ecosystem levels. Future research integrating long-term, multi-stressor, and mechanistic approaches will be critical for improving predictions of shark responses under ongoing ocean change.

Continue reading ‘Shark responses to ocean acidification: physiological buffering, behavioural vulnerability, and comparative insights from teleost fishes’

High-resolution mapping of carbonate system parameters over coastal waters using integrated uncrewed aircraft systems (UAS) and Autonomous Surface Vessel (ASV) observations

Coastal acidification, distinct from ocean acidification, is influenced by localized factors such as nutrient runoff, freshwater input, and decomposition. This study estimates carbonate system parameters in the Western Mississippi Sound (WMS) using integrated uncrewed aircraft systems (UAS) and autonomous surface vessel (ASV) observations. During 2018 to 2022, high-ressolution UAS imagery and in 2021 in situ ASV data including pH, pCO2, SST, SSS, CDOM, and Chl-a were collected. Machine learning algorithms were developed to estimate pCO2 and total alkalinity (TA), with random forest models achieving high accuracy (R2 > 0.91). A CDOM-based model was developed to derive SSS, which, along with Chl-a, fed into time-series mapping of TA and pCO2. Results highlight the effectiveness of combining UAS and ASV data to produce fine-scale carbonate system maps. This approach supports improved monitoring of coastal acidification and can be extended to estimate additional parameters such as calcite and aragonite saturation states and DIC.

Continue reading ‘High-resolution mapping of carbonate system parameters over coastal waters using integrated uncrewed aircraft systems (UAS) and Autonomous Surface Vessel (ASV) observations’

Air–sea CO2 exchange in the Southern Adriatic Sea: assessing its role as a moderate carbon sink over the last decade (2015–2024)

Coastal waters contribute significantly to the total oceanic carbon uptake. In this context, the cumulative influence exerted by marginal seas may be conspicuous. However sparse and unevenly distributed observations in such regions pose a serious limit to an accurate, experimentally based quantification of carbon dynamics. The Southern Adriatic (SAd) is one of the key sites of the Mediterranean Sea where open-ocean deep water formation occurs, a process recognized as a major driver of carbon sequestration. However, observations in this region remained sparse, thus quantitative assessment of surface carbon dynamics and air-sea carbon flux are still limited. In this study, a recently validated, decade-long (2015–2024) high-resolution time series of surface partial pressure of CO2 (pCO2 sw) and hydrographic measurements collected at the EMSO-E2M3A South Adriatic observatory, located at the centre of the Southern Adriatic Pit, has been analysed. The results showed that seasonal temperature variability and winter vertical mixing were the dominant drivers of pCO2 sw variability, with biological processes likely contributing during the post-convective period. Air–sea CO2 flux (FCO2), derived from in situ observations, indicated a clear seasonal pattern, with the SAd acting as a CO2 sink during winter and as a source during summer. Importantly, the results revealed that the SAd acted as a weak-to-moderate annual carbon sink over the last decade. However, the magnitude of FCO2 was strongly influenced by the selected gas transfer velocity parametrization. Similarly, the use of a different wind speed input, for instance ERA5 reanalysis, also altered the estimated CO2 flux, highlighting the importance of carefully selecting wind products for regional air-sea FCO2 calculations. Finally, the results presented here showed how time series such as the SAd dataset can serve as critical assets for validating operational ocean models, such as the European Copernicus Marine Service for the Mediterranean, by helping to identify discrepancies in the simulation of key processes.

Continue reading ‘Air–sea CO2 exchange in the Southern Adriatic Sea: assessing its role as a moderate carbon sink over the last decade (2015–2024)’

Join Pier2Peer!

Apply to Join Pier2Peer!

Pier2Peer is an international mentorship program that pairs mentees who are new to ocean acidification work with experienced mentors in the field. The program aims to foster community among ocean acidification (OA) professionals, build long-term capacity to measure and address OA globally, and provide training opportunities to support careers in OA-related fields. 

Pier2Peer is currently accepting applications for mentees and new mentors! Apply by 30 October 2026 to be considered for the 2026-2027 Pier2Peer Cohort. Before applying, please review eligibility requirements and terms of reference on the Pier2Peer webpage.
 

Mentee Application

Mentee Eligibility Requirements

If you are new to the field of ocean acidification, we encourage you to apply to be a Pier2Peer mentee. Pier2Peer mentees can be at any career stage. The time limit to be a Pier2Peer mentee is 2 years, so if you have already been a mentee for two years under a previous match, you are no longer eligible to apply for the Pier2Peer program as a mentee.

Mentees are expected to be self-motivated and to lead the interactions by reaching out to the mentor, introducing themselves, and scheduling the initial and following meetings. It is recommended that the mentee think about their goals and what they would like to accomplish through this mentorship. They are expected to show up prepared for each meeting and to be respectful of the time the mentor

Mentor Application

Mentor Eligibility Requirements

Any GOA-ON member who is an experienced or senior-level scientist and is actively engaged in ocean acidification research is encouraged to become a Pier2Peer mentor. A Pier2Peer mentor should be willing to regularly communicate with their mentee and should be invested in their mentee’s professional growth. Pier2Peer mentors should also be excited about the opportunity to work with mentees whose backgrounds or experiences may be different from their own.

Mentors are expected to be responsive to the mentee in a timely manner and to help support the mentee’s goals to the best of their ability. The mentor can also consider opportunities that they become aware of within their network and pass them on to the mentee, whether or not those opportunities are directly related to the mentor’s work. Mentors will be contacted on an annual basis to confirm their availability for the upcoming cohort of mentees.

Terms of Reference

The Pier2Peer Program supports active mentee/mentor pairs for one year, with the option to renew for a second year. The limit to participate in the program as a mentee is 2 years. To be considered an active participant, mentees must (1) complete the entrance and exit surveys distributed by the Pier2Peer Coordinator and (2) be in regular contact with their mentor. Mentors and mentees are expected to meet at least quarterly during their time in the Pier2Peer program. Participants are expected to be reliable, enthusiastic, willing to learn and grow, open to sharing knowledge and perspectives, and have aligned expectations on what they hope to gain from the experience.

Following completion of the Pier2Peer program, certificates of completion will be awarded to Pier2Peer mentees in good standing. To earn a certificate, mentees must complete the entrance and exit surveys distributed by the Pier2Peer Coordinator and be in quarterly contact with their mentor and/or in attendance at 2 or more Pier2Peer events throughout their tenure as a mentee.

The Pier2Peer Coordinator facilitates mentor/mentee matching, organizes Pier2Peer programming, and serves as a general resource to help mentee/mentor pairs gain the most from their Pier2Peer experience. To date, the Pier2Peer Coordinator sits within the NOAA Ocean Acidification Program and also serves on the GOA-ON Secretariat.

The Matching Process

When new mentors register for the Pier2Peer Program, their information will be used to generate mentor profiles that will be added to a mentor directory. A mentor profile will consist of biographical data, information about a mentor’s research focus and expertise, and details about their mentorship style. The mentor directory will be updated annually to reflect mentors who are available to accept new mentees for the upcoming cohort.

After mentees are accepted into the Pier2Peer program, they will be directed to the list of available mentors and asked to rank up to five possible mentors with whom they would like to work. By giving new mentees the opportunity to browse the profiles of available mentors, they can identify individuals whose interests, skills, and expertise are most aligned with their specific needs. During this process, the Pier2Peer coordinator may also provide suggestions to the mentees based on their application materials.

The Pier2Peer Coordinator will then use all of the information gathered from the mentors and mentees to suggest new pairs. Participants will be notified of their match via an email containing the name, contact information, and country of their partner.

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Distributions and controls of carbonate parameters in offshore oil and gas fields of the Beibu Gulf and adjacent northern South China Sea (nSCS) shelf during the fall season

Considering the strong seasonality in carbonate system parameters in coastal ecosystems, a comprehensive understanding of seasonal carbonate cycling is critically important for deploying scalable, nature-based negative emission technologies. Located in the northern South China Sea (nSCS), the Beibu Gulf is a semi-enclosed bay hydrodynamically connected to the nSCS shelf. Previous studies have documented carbonate dynamics in the Beibu Gulf during spring and summer; however, the spatial distributions and controlling mechanisms in fall remain unreported, as do comparative assessments with the adjacent nSCS shelf. Here, we present observations of the carbonate system in the Beibu Gulf and the adjacent nSCS shelf from a fall cruise conducted in 2024. Our results reveal that both the nSCS shelf and the Beibu Gulf act as CO2 sources with air-sea CO2 fluxes ranging from 0.4 to 1.6 mmol m−2 d−1. Although sea surface temperature exerts the dominant control on pCO2 variability, biogeochemical processes within the Beibu Gulf further elevate surface pCO2 by ∼20 μatm. In the water column, the spatial distributions of carbonate system parameters are primarily governed by the intrusion of SCS water and Kuroshio water. Notably, we report, for the first time, elevated dissolved inorganic carbon (DIC) and total alkalinity (TA) concentrations relative to background SCS water in certain bottom waters in Dongfang and Ledong within the Beibu Gulf, with increases of 94 ± 9 μmol kg−1 and 57 ± 3 μmol kg−1, respectively. Associated with these DIC and TA enhancements, we observed a concomitant increase in pCO2 of ∼92 μatm, alongside decreases in pH and aragonite saturation state (Ωarag) of 0.08 and 0.34 units, respectively. Qualitative analysis suggests that these DIC and TA additions likely originate from coupled CaCO3 dissolution and organic matter respiration, processes consistent with influences from submarine groundwater discharge (SGD) and/or sediment porewater release. However, these interpretations require further quantification and tracer-based validation.

Continue reading ‘Distributions and controls of carbonate parameters in offshore oil and gas fields of the Beibu Gulf and adjacent northern South China Sea (nSCS) shelf during the fall season’

Characterizing decision optimization strategies for managing climate change impacts on aquatic ecosystems and public health in Asia

Climate change is dramatically reshaping the delicate balance of Asia’s freshwater and marine ecosystems, intensifying threats to biodiversity, water quality, and public health. This review explores the profound interconnections between climate change and aquatic environments, highlighting the escalating risks posed by rising temperatures, shifting precipitation patterns, and extreme weather events. The paper delves into the alarming surge in harmful algal blooms, shifts in species distributions, and the increasing prevalence of waterborne diseases, all of which undermine both potable water sources and food security. In addition, the review examines the compounding impact of pollution, which further exacerbates the vulnerability of aquatic ecosystems. As global temperatures rise, the resulting decrease in dissolved oxygen and proliferation of pathogens create hostile environments for aquatic life, while extreme climatic events exacerbate water contamination and scarcity in many regions. Vulnerable communities, heavily reliant on aquatic resources for survival, face a dual challenge of environmental and socioeconomic instability. As Asia’s aquatic ecosystems continue to face unprecedented stress, proactive interventions are essential to safeguard food security, water resources, and public health for future generations.

Continue reading ‘Characterizing decision optimization strategies for managing climate change impacts on aquatic ecosystems and public health in Asia’

OA-ICC bibliographic database updated

An updated version of the OA-ICC bibliographic database is available online.

The database currently contains 9,974 references and includes citations, abstracts and assigned keywords. Updates are made every month.

The database is available as a group on Zotero. Subscribe online or, for a better user experience, download the Zotero desktop application and sync with the group OA-ICC in Zotero. Please see the “User instructions” for further details.

OA-ICC, 3 September 2026.

Physiology and hydrodynamics influence the susceptibility of reef-building corals to ocean acidification

Ocean acidification (OA) poses a major future threat to tropical coral reefs. This is primarily due to its effects on reef-building coral species, which vary in their susceptibility to this climate change stressor. However, the potential factors underlying the range of susceptibilities observed among reef-building corals remain poorly understood. Therefore, this doctoral thesis investigates the influence of species-specific physiology and water flow conditions on coral susceptibility to OA. Using an experimental, multi-scale approach, the present thesis addresses this knowledge gap in a total of four studies and focuses on the physiological response of three major reef-building coral genera (Acropora, Pocillopora, and Porites) to prolonged exposure of OA conditions (> three months).

The results showed that (1) variable decreases in coral growth under OA were mediated by differential changes in maintenance and cellular stress parameters. This physiological interplay was genus-specific for Acropora and Pocillopora, and was species-specific for Porites spp. Moreover, assessments of the combined effects of OA and changes in water flow conditions indicated that (2) temporarily reduced water flow may mitigate OA effects on Acropora and Porites spp. Still, simultaneous changes in seawater chemistry and flow led to changes in coral physiology with complex and species-specific patterns. Finally, at the microscale, characterisation of the effects of OA and water flow on the concentration boundary layer (CBL) at the coral surface revealed that (3) OA was an overall weak modulator of this layer, regardless of flow conditions and CBL variability among species. Despite minor OA effects, however, the results also suggested that the CBL had a limited OA-buffering capacity due to thin pH gradients across the CBL. Nonetheless, low flow potentially enhanced CBL sheltering from acidified seawater by elevating pH at the coral surface.

In summary, this thesis provides evidence that both species physiology and water flow conditions shape coral susceptibility to OA in species-specific patterns and contributes novel insights into the potential links, between colony and CBL levels, involved in shaping it. Furthermore, the findings of this thesis showcase the potential of low-flow environments as refugia for coral species under OA and highlight the importance of including reef hydrodynamics in future OA scenarios, which will require consideration of different spatial and temporal scales. Altogether, the knowledge provided here may help improve projections of coral community dynamics under future OA and inform conservation efforts.

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Biological impacts of ocean change in upwelling systems: from organismal responses to fishery outcomes

Climate change is altering marine ecosystems through concurrent changes in temperature, carbonate chemistry, and dissolved oxygen. These changes are particularly important in coastal upwelling systems, where organisms already experience naturally variable environmental conditions. This dissertation integrates synthesis, experimentation, and modeling to evaluate how ocean change influences marine invertebrates and the fisheries they support. First, I conducted a meta analysis examining the effects of ocean acidification and deoxygenation on marine invertebrates. Both stressors produced broadly negative effects on fitness-related
traits, including survival, growth, development, and reproduction. Although vulnerability varied among taxa, responses were not strongly structured across broad taxonomic groups, suggesting that species-specific traits and environmental history are important determinants of sensitivity. Second, I investigated the effects of multi-stressor upwelling conditions on juvenile Dungeness crab (Metacarcinus magister). Crabs maintained net calcification across a range of moderate conditions but exhibited significant declines under the most severe treatments, indicating threshold responses to environmental stress. Short-term environmental variability had little effect relative to mean conditions, suggesting that exposure severity is a stronger driver of performance than exposure pattern. Finally, I incorporated experimentally observed reductions in calcification into a size-structured yield-per
recruit model to evaluate potential fishery consequences. Reduced growth delayed attainment of legal harvest size and decreased projected fishery yield, demonstrating how sublethal physiological responses can scale to population and management-relevant outcomes. Together, these chapters show that ocean change can affect biological systems across levels of organization, from individual performance to fishery productivity. By linking broad patterns of vulnerability to species-specific responses and applied fishery outcomes, this dissertation provides a framework for understanding and managing the impacts of global change in coastal
marine ecosystems.

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Chapter 22 – Environmental ethics and the case of ocean acidification

Ocean acidification (OA) is a paradigm case of an encroaching long-term environmental problem that is mainly caused by CO2-emissions and will have diverse and often uncertain impacts on marine organisms and ecosystems. SDG 14 (‘Life below water’) demands to halt or slow down OA. Since occurrence of OA is remote to our daily terrestrial life, it has not been in the focus of moral attention so far. This chapter emerged from the BIOACID research programme at Kiel University. It examines five sources of normativity in environmental ethics, addresses problems of uncertainty and framing, and interprets the metaphor of ‘ocean health’ with recurrence to an updated version of Aldo Leopold’s principle. The chapter argues that basic non-anthropocentric approaches, such as biocentrism, ecocentrism, and holism, face severe problems with respect to marine environments and can’t serve as solid groundings for an ocean ethics. The chapter proposes that a deep anthropocentric environmental ethics can provide an appropriate grounding for ambitious marine stewardship policies, including ocean acidification. Finally, the chapter proposes to define a critical threshold for OA which should not be passed.

22.1 Introduction

This chapter addresses ocean acidification (OA) from an environmental ethics perspective. Ocean acidification is seen as a paradigm case for post-normal science. At its core, the chapter adopts and substantiates several ethical building blocks from a discourse-pragmatic approach, as (a) common heritage of humankind, (b) strong sustainability, (c) Aldo Leopold’s principle, and (d) ecosystem services, with a special eye on cultural services. The idea to attribute inherent moral value to marine organisms and ecological systems is seen critically.

This chapter emerged from the research programme BIOACID (Biological Impacts of Ocean Acidification) being conducted at Kiel University. Within the final period of the BIOACID research programme, a work package on environmental ethics was included to address the underlying normative issues. This project resulted in a monograph: Frederike Böhm and Konrad Ott, Impacts of Ocean Acidification: An Analysis from an Environmental Ethics Perspective (Böhm & Ott, 2019).1 The following chapter presents the essential lines of reasoning of this book and adds new thoughts. It is organized as follows: Section 22.2 gives a brief overview of the scientific dimension. Section 22.3 presents a post-normal-science framing of OA. Section 22.4 deals with interrelated sources of normativity which stem from environmental ethics. Section 22.5 addresses the problem of defining a planetary boundary for OA.

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Chapter 21 – How can we curb ocean acidification in a time of multiple competing crises?

Since the 1972 Stockholm Conference, many global environmental agreements have been struck for climate, biodiversity, and sustainable development goals. Still, the planets environment has continued to decline, including on the ocean. One result has been ocean acidification, caused by the uptake of 30–40 per cent of all carbon dioxide from the atmosphere. On its face, this ocean CO2 uptake sounds positive. However, with a continuous increase of CO2 in the atmosphere, this also means an increase in the ocean, which alters its chemistry in ways that may disrupt oceanic biodiversity through making waters more acidic. When coupling this with other major global crisis, we see that we have only adopted global environmental agreements that protect humans from our own nature-induced change – and not ensured that we take our ethical obligation to nature itself by protecting it from human use. This chapter looks at the risk perception literature and considers how the science–policy interface can be exploited to convey the importance of ocean acidification, and whether the anthropogenic lens is what will always be necessary to ensure action to protect something from ourselves.

21.1 Introduction

Around the end of the eighteenth century, with the design of the steam engine by James Watt, the geological age of the Anthropocene started (Crutzen 2006). This has led to unprecedented changes in the natural environment, the most serious of which is climate change. We have tried to change our paths since then though. In fact, more than 50 years have now passed since the 1972 Stockholm Conference (Rockström et al. 2021) – the United Nations Conference on the Human Environment. This was when global leaders for the first time made the environment and the triple planetary crisis of climate, nature, and pollution a focus issue. At that time, in 1972, they warned – and this still holds true today – that ‘Through ignorance or indifference we can do massive and irreversible harm to the earthly environment on which our life and well-being depend’ (United Nations 1973).

Since then, state leaders have created the United Nations Environment Programme (UNEP) entered into force both a climate and biodiversity agreement (United Nations Framework Convention on Climate Change (UNFCCC) and the Convention on Biological Diversity (CBD)) with many iterations; signed the UN 17 Sustainable Development Goals (SDGs) in 2015 with corresponding targets, as part of the realization of Agenda 2030; and in 2022 and 2023, state leaders also signed the Kunming-Montreal Global Biodiversity Framework (GBF) and the Agreement under the United Nations Convention on the Law of the Sea on the conservation and sustainable use of marine biological diversity in areas beyond national jurisdiction (BBNJ). Still, we have continued to saturate Earth’s capacity to support future generations (Intergovernmental Panel on Climate Change 2018). The planet is more polluted than earlier, there are fewer fish in the ocean, the temperature is increasing, methane levels are at their highest in 800,000 years, polar regions are melting, plastics are ubiquitous, and the ocean is more acidic than ever (Barnes & Kaiser 2009; Hönisch et al. 2012; Worm & Branch 2012; MacLeod et al. 2021; Intergovernmental Panel on Climate Change 2022).

In fact, six of nine planetary boundaries that are needed for humans to be able to develop and thrive for generations to come have been breached already (Richardson et al. 2023). Then, in 2025, the ocean acidification boundary was crossed (Findlay et al. 2025). This is a boundary that is also specifically mentioned in the SDGs, with target 3 of SDG14 Life below water specifying the need to ‘Minimize and address the impacts of ocean acidification, including through enhanced scientific cooperation at all levels’. It was in fact the only by-product of climate change and greenhouse gas emission that was singled out to be included under this goal (United Nations Department of Economic and Social Affairs 2022). Still, there is a lack of concrete knowledge of how breaching this boundary will impact either non-human populations or the corresponding human population that depends on these (Buckley et al. 2017).

In light of this, the current chapter considers ocean acidification within the planetary boundaries framework and assesses the lack of responses that led to, and may further exacerbate, the breaching of this boundary. We argue that this in part can be explained by the human-centric perspective of global environmental governance, where effective governance is linked to risk perception within a human context. In terms of ocean acidification, we argue that humans still have a low personal risk perception, coupled with a lack of knowledge (or interest) about it, which directly hinders its agenda setting and implementation of effective governance. We conclude with considering whether the increased saliency of biodiversity challenges, as brought to the surface with the signing of the GBF in 2022, can bring more attention to the role of stressors such as ocean acidification on sustainability and the consequences the breach of this planetary boundary can have on not only humans but also non-human populations.

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