Literature DB >> 21742050

CO2 induced seawater acidification impacts sea urchin larval development I: elevated metabolic rates decrease scope for growth and induce developmental delay.

M Stumpp1, J Wren, F Melzner, M C Thorndyke, S T Dupont.   

Abstract

Anthropogenic CO(2) emissions are acidifying the world's oceans. A growing body of evidence is showing that ocean acidification impacts growth and developmental rates of marine invertebrates. Here we test the impact of elevated seawater pCO(2) (129 Pa, 1271 μatm) on early development, larval metabolic and feeding rates in a marine model organism, the sea urchin Strongylocentrotus purpuratus. Growth and development was assessed by measuring total body length, body rod length, postoral rod length and posterolateral rod length. Comparing these parameters between treatments suggests that larvae suffer from a developmental delay (by ca. 8%) rather than from the previously postulated reductions in size at comparable developmental stages. Further, we found maximum increases in respiration rates of +100% under elevated pCO(2), while body length corrected feeding rates did not differ between larvae from both treatments. Calculating scope for growth illustrates that larvae raised under high pCO(2) spent an average of 39 to 45% of the available energy for somatic growth, while control larvae could allocate between 78 and 80% of the available energy into growth processes. Our results highlight the importance of defining a standard frame of reference when comparing a given parameter between treatments, as observed differences can be easily due to comparison of different larval ages with their specific set of biological characters.
Copyright © 2011 Elsevier Inc. All rights reserved.

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Year:  2011        PMID: 21742050     DOI: 10.1016/j.cbpa.2011.06.022

Source DB:  PubMed          Journal:  Comp Biochem Physiol A Mol Integr Physiol        ISSN: 1095-6433            Impact factor:   2.320


  50 in total

1.  Spatio-temporal environmental variation mediates geographical differences in phenotypic responses to ocean acidification.

Authors:  Juan Diego Gaitán-Espitia; Paola A Villanueva; Jorge Lopez; Rodrigo Torres; Jorge M Navarro; Leonardo D Bacigalupe
Journal:  Biol Lett       Date:  2017-02       Impact factor: 3.703

2.  Intra-population variability of ocean acidification impacts on the physiology of Baltic blue mussels (Mytilus edulis): integrating tissue and organism response.

Authors:  L S Stapp; J Thomsen; H Schade; C Bock; F Melzner; H O Pörtner; G Lannig
Journal:  J Comp Physiol B       Date:  2016-12-05       Impact factor: 2.200

3.  Experimental ocean acidification alters the allocation of metabolic energy.

Authors:  T-C Francis Pan; Scott L Applebaum; Donal T Manahan
Journal:  Proc Natl Acad Sci U S A       Date:  2015-03-30       Impact factor: 11.205

4.  Variability in larval gut pH regulation defines sensitivity to ocean acidification in six species of the Ambulacraria superphylum.

Authors:  Marian Hu; Yung-Che Tseng; Yi-Hsien Su; Etienne Lein; Hae-Gyeong Lee; Jay-Ron Lee; Sam Dupont; Meike Stumpp
Journal:  Proc Biol Sci       Date:  2017-10-11       Impact factor: 5.349

5.  Bioenergetic trade-offs in the sea cucumber Apostichopus japonicus (Echinodermata: Holothuroidea) in response to CO2-driven ocean acidification.

Authors:  Xiutang Yuan; Senlin Shao; Xiaolong Yang; Dazuo Yang; Qinzeng Xu; Humin Zong; Shilin Liu
Journal:  Environ Sci Pollut Res Int       Date:  2016-01-19       Impact factor: 4.223

6.  Indirect effects of ocean acidification drive feeding and growth of juvenile crown-of-thorns starfish, Acanthaster planci.

Authors:  Pamela Z Kamya; Maria Byrne; Benjamin Mos; Lauren Hall; Symon A Dworjanyn
Journal:  Proc Biol Sci       Date:  2017-06-14       Impact factor: 5.349

7.  In situ developmental responses of tropical sea urchin larvae to ocean acidification conditions at naturally elevated pCO2 vent sites.

Authors:  Miles D Lamare; Michelle Liddy; Sven Uthicke
Journal:  Proc Biol Sci       Date:  2016-11-30       Impact factor: 5.349

8.  Temperature and CO(2) additively regulate physiology, morphology and genomic responses of larval sea urchins, Strongylocentrotus purpuratus.

Authors:  Jacqueline L Padilla-Gamiño; Morgan W Kelly; Tyler G Evans; Gretchen E Hofmann
Journal:  Proc Biol Sci       Date:  2013-03-27       Impact factor: 5.349

9.  Acidified seawater impacts sea urchin larvae pH regulatory systems relevant for calcification.

Authors:  Meike Stumpp; Marian Y Hu; Frank Melzner; Magdalena A Gutowska; Narimane Dorey; Nina Himmerkus; Wiebke C Holtmann; Sam T Dupont; Michael C Thorndyke; Markus Bleich
Journal:  Proc Natl Acad Sci U S A       Date:  2012-10-17       Impact factor: 11.205

10.  Juvenile growth of the tropical sea urchin Lytechinus variegatus exposed to near-future ocean acidification scenarios.

Authors:  Rebecca Albright; Charnelle Bland; Phillip Gillette; Joseph E Serafy; Chris Langdon; Thomas R Capo
Journal:  J Exp Mar Bio Ecol       Date:  2012-06-08       Impact factor: 2.171

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