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    <loc>https://www.armstrongecophys.com/tarapacific</loc>
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    <lastmod>2024-01-03</lastmod>
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      <image:title>Tara Pacific</image:title>
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      <image:title>Tara Pacific</image:title>
      <image:caption>Mo'orea, Society Archipelago, French Polynesia. Photo © Lauric Thiault</image:caption>
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      <image:title>Tara Pacific - Susceptibility of Early Life Stages</image:title>
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      <image:title>Tara Pacific - Thermal Adaptation in Marine Ecotherms</image:title>
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    <loc>https://www.armstrongecophys.com/giant-clam-physiology</loc>
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    <lastmod>2022-11-02</lastmod>
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      <image:title>Giant Clam Physiology</image:title>
      <image:caption>Tridanca maxima.</image:caption>
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      <image:title>Giant Clam Physiology</image:title>
      <image:caption>Model of zooxanthellae tubule system in T. maxima as compared with the endosymbiotic arrangement in corals. (Left) In giant clams, Symbiodinium are hosted extracellularly in digestive tubules (ZT) bounded by host clam cells (blue) that express VHA in apical membranes (green). (Right) In corals, algae are housed intracellularly in a membrane-bound symbiosome (SB) containing VHA. In both taxa, metabolic CO2 is converted by host carbonic anhydrase (CA) to H+ and HCO3 − (1). H+ is then actively transported into the tubule lumen by clam VHA (green/yellow structure; 2). HCO3 − follows via an unknown bicarbonate transport mechanism (gray circle; 3), whereupon putative host-derived CA catalyzes the reconversion of both substrates into CO2 (4). CO2 diffuses into Symbiodinium cells (5) where it is transported by unknown mechanisms to algal chloroplasts. Algal photosynthesis drives the production of O2, which diffuses into host tissues, and sugars (6), which are translocated by unknown mechanisms to host mitochondria where they fuel oxidative catabolism and production of metabolic CO2 (7) forming a link to the conversion of CO2 to H+ and HCO3 − by CA (1)</image:caption>
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      <image:title>Giant Clam Physiology - Tara Pacific Coral Bioinformatics</image:title>
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      <image:title>Giant Clam Physiology - Giant Clam Physiology</image:title>
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      <image:title>Giant Clam Physiology - Susceptibility of Early Life Stages</image:title>
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      <image:title>Giant Clam Physiology - Thermal Adaptation in Marine Ecotherms</image:title>
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      <image:title>Giant Clam Physiology</image:title>
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    <loc>https://www.armstrongecophys.com/crustacean-genomics</loc>
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    <lastmod>2019-01-27</lastmod>
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      <image:title>Crustacean Genomics</image:title>
      <image:caption>Transcriptomic responses of the congeneric species Petrolisthes cinctipes and P. manimacuis. In the more heat-sensitive species, P. manimaculus, fewer genes are differentially expressed in response to heat shock and acidification, but those genes respond more strongly than in the heat tolerant P. cinctipes.</image:caption>
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      <image:title>Crustacean Genomics - Tara Pacific Coral Bioinformatics</image:title>
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      <image:title>Crustacean Genomics - Giant Clam Physiology</image:title>
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      <image:title>Crustacean Genomics - Susceptibility of Early Life Stages</image:title>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/599876a2f14aa1fb276e59d6/1525352210971-WNCSSZEK3QQ7U55X2JQY/FlatPorcelainCrab.jpg</image:loc>
      <image:title>Crustacean Genomics - Functional Genomics of Differential Sensitivity</image:title>
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      <image:title>Crustacean Genomics - Thermal Adaptation in Marine Ecotherms</image:title>
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      <image:title>Crustacean Genomics</image:title>
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    <loc>https://www.armstrongecophys.com/early-life-stages</loc>
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    <lastmod>2022-03-30</lastmod>
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      <image:title>Early Life Stages</image:title>
      <image:caption>Porcellana platycheles embryos exposed to 1-h heat shock early in development (orange), or both early and late (red) showed higher levels of mortality mid-way through the experiment (black arrow) than those exposed to heat shock later in development or not at all (green and blue lines).</image:caption>
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      <image:title>Early Life Stages - Tara Pacific Coral Bioinformatics</image:title>
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      <image:title>Early Life Stages - Giant Clam Physiology</image:title>
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      <image:title>Early Life Stages - Susceptibility of Early Life Stages</image:title>
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      <image:loc>https://images.squarespace-cdn.com/content/v1/599876a2f14aa1fb276e59d6/1525352210971-WNCSSZEK3QQ7U55X2JQY/FlatPorcelainCrab.jpg</image:loc>
      <image:title>Early Life Stages - Functional Genomics of Differential Sensitivity</image:title>
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      <image:title>Early Life Stages - Thermal Adaptation in Marine Ecotherms</image:title>
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      <image:title>Early Life Stages - Past Projects</image:title>
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      <image:title>Early Life Stages</image:title>
      <image:caption>Exposure to multistressor conditions has a nearly additive, negative, effect on hatching success in the tropical sea hare Stylocheilus striatus. From (Armstrong et al. 2017)</image:caption>
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      <image:title>Early Life Stages</image:title>
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    <loc>https://www.armstrongecophys.com/past-projects</loc>
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    <lastmod>2019-01-27</lastmod>
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      <image:title>Past Projects</image:title>
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      <image:title>Past Projects</image:title>
      <image:caption>Glycine betaine. One of the most abundant betaines in marine organisms.…</image:caption>
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      <image:title>Past Projects</image:title>
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      <image:title>Past Projects</image:title>
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      <image:title>Past Projects - Tara Pacific Coral Bioinformatics</image:title>
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      <image:caption>Conceptual cartoon of fluorescent in-situ hybridization technique on the left. On the right, examples of labelled and unlabelled cyanobacterial cells. The goal is to develop fluorescent probes with are specific to some species (e.g. toxic Microcystis spp.) while non-reactive to others (e.g. non-toxic Anabaena spp.) as shown here.</image:caption>
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      <image:caption>Heat tolerance plasticity and heat tolerance are negatively correlated in intertidal gastropod molluscs. Mean heat tolerance plasticities (CTmax ARR) are plotted against mean heat tolerance limits (CTmax, 13°C acclimation group) for each species for which data was available. The resulting, phylogenetically constrained, negative relationship suggests that nudibranchs with the highest inherent tolerances of warming are also the least able to plastically adjust those limits in the face of future temperature increases.</image:caption>
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      <image:caption>Quand les bénitiers inspirent les panneaux solaires. 19 Novembre 2015</image:caption>
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      <image:caption>Here’s how a clam can hide within a rock. 27 July 2018</image:caption>
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