Literature DB >> 34121771

In situ recovery of bivalve shell characteristics after temporary exposure to elevated pCO2.

Jason Grear1, Adam Pimenta1, Harriet Booth1,2, Doranne Borsay Horowitz1, Wilson Mendoza1,2, Matthew Liebman3.   

Abstract

Ocean uptake of carbon dioxide (CO2) is causing changes in carbonate chemistry that affect calcification in marine organisms. In coastal areas, this CO2-enriched seawater mixes with waters affected by seasonal degradation of organic material loaded externally from watersheds or produced as a response to nutrient enrichment. As a result, coastal bivalves often experience strong seasonal changes in carbonate chemistry. In some cases, these changes may resemble those experienced by aquacultured bivalves during translocation activities. We mimicked these changes by exposing juvenile hard clams (500 μm, Mercenaria mercenaria) to pCO2 in laboratory upwellers at levels resembling those already reported for northeastern US estuaries (mean upweller pCO2 = 773, 1274, and 1838 μatm) and then transplanting to three grow-out sites along an expected nutrient gradient in Narragansett Bay, RI (154 bags of 100 clams). Prior to the field grow-out, clams exposed to elevated pCO2 exhibited larger shells but lower dry weight per unit volume (dw/V). However, percent increase in dw/V was highest for this group during the 27-day field grow-out, suggesting that individuals with low dw/V after the laboratory treatment accelerated accumulation of dw/V when they were transferred to the bay. Treatments also appeared to affect shell mineral structure and condition of digestive diverticula. Although treatment effects diminished during the field grow-out, clams that were pre-exposed for several weeks to high pCO2 would likely have been temporarily vulnerable to predation or other factors that interact with shell integrity. This would be expected to reduce population recovery from short-term exposures to high pCO2.

Entities:  

Keywords:  Coastal acidification; FTIR; Mercenaria; bivalve; growth; histopathology; minerology

Year:  2020        PMID: 34121771      PMCID: PMC8193772          DOI: 10.1002/lno.11456

Source DB:  PubMed          Journal:  Limnol Oceanogr        ISSN: 0024-3590            Impact factor:   4.745


  1 in total

1.  Synoptic assessment of coastal total alkalinity through community science.

Authors:  J E Rheuban; P R Gassett; D C McCorkle; C W Hunt; M Liebman; C Bastidas; K O'Brien-Clayton; A R Pimenta; E Silva; P Vlahos; R J Woosley; J Ries; C M Liberti; J Grear; J Salisbury; D C Brady; K Guay; M LaVigne; A L Strong; E Stancioff; E Turner
Journal:  Environ Res Lett       Date:  2021-01-21       Impact factor: 6.793

  1 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.