9129767 67KE7FSD 1 apa 50 date desc year Tresguerres 18 https://mtresguerres.scrippsprofiles.ucsd.edu/wp-content/plugins/zotpress/
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Kwan, G. T., Clifford, A. M., Prime, K. J., Harter, T. S., & Tresguerres, M. (2024). Gill ionocyte remodeling mediates blood pH regulation in rockfish ( Sebastes diploproa ) exposed to environmentally relevant hypercapnia. Physiological Genomics, 56(10), 661–671. https://doi.org/10.1152/physiolgenomics.00057.2024
Walton, E., Badder, L., Galindo-Martínez, C. T., Berry, D. B., Tresguerres, M., & Wangpraseurt, D. (2024). Advancing the coral propagation toolkit via hypersalinity induced coral micropropagates. Frontiers in Marine Science, 11, 1454887. https://doi.org/10.3389/fmars.2024.1454887
Harter, T. S., Smith, E. A., Salmerón, C., Thies, A. B., Delgado, B., Wilson, R. W., & Tresguerres, M. (2024). Soluble adenylyl cyclase is an acid‐base sensor in rainbow trout red blood cells that regulates intracellular pH and haemoglobin–oxygen binding. Acta Physiologica, e14205. https://doi.org/10.1111/apha.14205
Kwan, G. T., Andrade, L. R., Prime, K. J., & Tresguerres, M. (2024). Immunohistochemical and ultrastructural characterization of the inner ear epithelial cells of splitnose rockfish ( Sebastes diploproa ). American Journal of Physiology-Regulatory, Integrative and Comparative Physiology, 326(4), R277–R296. https://doi.org/10.1152/ajpregu.00223.2023
Skelton, Z. R., McCormick, L. R., Kwan, G. T., Lonthair, J., Neira, C., Clements, S. M., Martz, T. R., Bresnahan, P. J., Send, U., Giddings, S. N., Sevadjian, J. C., Jaeger, S., Feit, A., Frable, B. W., Zerofski, P. J., Torres, M., Crooks, J. A., McCullough, J., Carter, M. L., … Wegner, N. C. (2024). Organismal responses to deteriorating water quality during the historic 2020 red tide off Southern California. Elem Sci Anth, 12(1), 00067. https://doi.org/10.1525/elementa.2023.00067
Pedersen, K., Cyronak, T., Goodrich, M., Kline, D. I., Linsmayer, L. B., Torres, R., Tresguerres, M., & Andersson, A. J. (2024). Short-Term Spatiotemporal Variability in Seawater Carbonate Chemistry at Two Contrasting Reef Locations in Bocas del Toro, Panama. Aquatic Geochemistry. https://doi.org/10.1007/s10498-024-09421-y
Linsmayer, L. B., Noel, S. K., Leray, M., Wangpraseurt, D., Hassibi, C., Kline, D. I., & Tresguerres, M. (2024). Effects of bleaching on oxygen dynamics and energy metabolism of two Caribbean coral species. Science of The Total Environment, 919, 170753. https://doi.org/10.1016/j.scitotenv.2024.170753
Harter, T. S., Smith, E. A., & Tresguerres, M. (2023). A novel perspective on the evolutionary loss of plasma-accessible carbonic anhydrase at the teleost gill. Journal of Experimental Biology, 226(19), jeb246016. https://doi.org/10.1242/jeb.246016
Tresguerres, M., Kwan, G. T., & Weinrauch, A. (2023). Evolving views of ionic, osmotic and acid–base regulation in aquatic animals. Journal of Experimental Biology, 226(14), jeb245747. https://doi.org/10.1242/jeb.245747
Camacho-Jiménez, L., Peregrino-Uriarte, A. B., Leyva-Carrillo, L., Gómez-Jiménez, S., Thies, A. B., Tresguerres, M., & Yepiz-Plascencia, G. (2023). Effects of severe hypoxia and glyceraldehyde-3-phosphate dehydrogenase (GAPDH) knock-down on its gene expression, activity, subcellular localization, and apoptosis in gills of the shrimp Penaeus vannamei. Marine and Freshwater Behaviour and Physiology, 1–20. https://doi.org/10.1080/10236244.2023.2216346
Roger, L., Lewinski, N., Putnam, H., Chen, S., Roxbury, D., Tresguerres, M., & Wangpraseurt, D. (2023). Nanotechnology for coral reef conservation, restoration and rehabilitation. Nature Nanotechnology. https://doi.org/10.1038/s41565-023-01402-6
Moggioli, G., Panossian, B., Sun, Y., Thiel, D., Martín-Zamora, F. M., Tran, M., Clifford, A. M., Goffredi, S. K., Rimskaya-Korsakova, N., Jékely, G., Tresguerres, M., Qian, P.-Y., Qiu, J.-W., Rouse, G. W., Henry, L. M., & Martín-Durán, J. M. (2023). Distinct genomic routes underlie transitions to specialised symbiotic lifestyles in deep-sea annelid worms. Nature Communications, 14(1), 2814. https://doi.org/10.1038/s41467-023-38521-6
Chang, W. W., Thies, A. B., Tresguerres, M., & Hu, M. Y. (2023). Soluble adenylyl cyclase coordinates intracellular pH homeostasis and biomineralization in calcifying cells of a marine animal. American Journal of Physiology-Cell Physiology, 324(3), C777–C786. https://doi.org/10.1152/ajpcell.00524.2022
Yee, D. P., Samo, T. J., Abbriano, R. M., Shimasaki, B., Vernet, M., Mayali, X., Weber, P. K., Mitchell, B. G., Hildebrand, M., Decelle, J., & Tresguerres, M. (2023). The V-type ATPase enhances photosynthesis in marine phytoplankton and further links phagocytosis to symbiogenesis. Current Biology, 33(12), 2541-2547.e5. https://doi.org/10.1016/j.cub.2023.05.020
Hamilton, T. J., Tresguerres, M., Kwan, G. T., Szaskiewicz, J., Franczak, B., Cyronak, T., Andersson, A. J., & Kline, D. I. (2023). Effects of ocean acidification on dopamine-mediated behavioral responses of a coral reef damselfish. Science of The Total Environment, 877, 162860. https://doi.org/10.1016/j.scitotenv.2023.162860
Pezner, A. K., Courtney, T. A., Barkley, H. C., Chou, W.-C., Chu, H.-C., Clements, S. M., Cyronak, T., DeGrandpre, M. D., Kekuewa, S. A. H., Kline, D. I., Liang, Y.-B., Martz, T. R., Mitarai, S., Page, H. N., Rintoul, M. S., Smith, J. E., Soong, K., Takeshita, Y., Tresguerres, M., … Andersson, A. J. (2023). Increasing hypoxia on global coral reefs under ocean warming. Nature Climate Change, 13(4), 403–409. https://doi.org/10.1038/s41558-023-01619-2
Clifford, A. M., Wilkie, M. P., Edwards, S. L., Tresguerres, M., & Goss, G. G. (2022). Dining on the dead in the deep: Active NH 4 + excretion via Na + /H + (NH 4 + ) exchange in the highly ammonia tolerant Pacific hagfish, Eptatretus stoutii. Acta Physiologica. https://doi.org/10.1111/apha.13845
Kwan, G. T., & Tresguerres, M. (2022). Elucidating the acid-base mechanisms underlying otolith overgrowth in fish exposed to ocean acidification. Science of the Total Environment, 823. https://doi.org/10.1016/j.scitotenv.2022.153690
Wangpraseurt, D., Sun, Y. Z., You, S. T., Chua, S. T., Noel, S. K., Willard, H. F., Berry, D. B., Clifford, A. M., Plummer, S., Xiang, Y., Hwang, H. H., Kaandorp, J., Diaz, J. M., La Jeunesse, T. C., Pernice, M., Vignolini, S., Tresguerres, M., & Chen, S. C. (2022). Bioprinted Living Coral Microenvironments Mimicking Coral-Algal Symbiosis. Advanced Functional Materials. https://doi.org/10.1002/adfm.202202273
Clifford, A. M., Tresguerres, M., Goss, G. G., & Wood, C. M. (2022). A novel K+-dependent Na+ uptake mechanism during low pH exposure in adult zebrafish (Danio rerio): New tricks for old dogma. Acta Physiologica, 234(3). https://doi.org/10.1111/apha.13777
McKenzie, E. K. G., Kwan, G. T., Tresguerres, M., & Matthews, P. G. D. (2022). A pH-powered mechanochemical engine regulates the buoyancy of Chaoborus midge larvae. Current Biology, 32(4), 927-+. https://doi.org/10.1016/j.cub.2022.01.018
Ferreira, P., Kwan, G. T., Haldorson, S., Rummer, J. L., Tashiro, F., Castro, L. F. C., Tresguerres, M., & Wilson, J. M. (2022). A multi-tasking stomach: functional coexistence of acid-peptic digestion and defensive body inflation in three distantly related vertebrate lineages. Biology Letters, 18(2), 6. https://doi.org/10.1098/rsbl.2021.0583
Barott, K. L., Thies, A. B., & Tresguerres, M. (2022). V-type H+-ATPase in the symbiosome membrane is a conserved mechanism for host control of photosynthesis in anthozoan photosymbioses. Royal Society Open Science, 9(1), 6. https://doi.org/10.1098/rsos.211449
Montgomery, D. W., Kwan, G. T., Davison, W. G., Finlay, J., Berry, A., Simpson, S. D., Engelhard, G. H., Birchenough, S. N. R., Tresguerres, M., & Wilson, R. (2022). Rapid blood acid-base regulation by European sea bass (Dicentrarchus labrax) in response to sudden exposure to high environmental CO2. Journal of Experimental Biology, 225(2), 15. https://doi.org/10.1242/jeb.242735
Kwan, G. T., Frable, B. W., Thompson, A. R., & Tresguerres, M. (2022). Optimizing immunostaining of archival fish samples to enhance museum collection potential. Acta Histochemica, 124(7), 151952. https://doi.org/10.1016/j.acthis.2022.151952
Harter, T. S., Clifford, A. M., & Tresguerres, M. (2021). Adrenergically induced translocation of red blood cell 8-adrenergic sodium- proton exchangers has ecological relevance for hypoxic and hypercapnic white seabass. American Journal of Physiology-Regulatory Integrative and Comparative Physiology, 321(5), R655–R671. https://doi.org/10.1152/ajpregu.00175.2021
Kwan, G. T., Shen, S. G., Drawbridge, M., Checkley, D. M., & Tresguerres, M. (2021). Ion-transporting capacity and aerobic respiration of larval white seabass (Atractoscion nobilis) may be resilient to ocean acidification conditions. Science of the Total Environment, 791, 9. https://doi.org/10.1016/j.scitotenv.2021.148285
Hamilton, T. J., Radke, N. H., Bajwa, J., Chaput, S., & Tresguerres, M. (2021). The dose makes the poison: Non-linear behavioural response to CO2-induced aquatic acidification in zebrafish (Danio rerio). Science of the Total Environment, 778. https://doi.org/10.1016/j.scitotenv.2021.146320
Salmeron, C., Harter, T. S., Kwan, G. T., Roa, J. N., Blair, S. D., Rummer, J. L., Shiels, H. A., Goss, G. G., Wilson, R. W., & Tresguerres, M. (2021). Molecular and biochemical characterization of the bicarbonate-sensing soluble adenylyl cyclase from a bony fish, the rainbow trout Oncorhynchus mykiss. Interface Focus, 11(2). https://doi.org/10.1098/rsfs.2020.0026
Frommel, A. Y., Kwan, G. T., Prime, K. J., Tresguerres, M., Lauridsen, H., Val, A. L., Goncalves, L. U., & Brauner, C. J. (2021). Changes in gill and air-breathing organ characteristics during the transition from water- to air-breathing in juvenile Arapaima gigas. Journal of Experimental Zoology Part A-Ecological and Integrative Physiology. https://doi.org/10.1002/jez.2456
Linsmayer, L. B., Deheyn, D. D., Tomanek, L., & Tresguerres, M. (2020). Dynamic regulation of coral energy metabolism throughout the diel cycle. Scientific Reports, 10(1). https://doi.org/10.1038/s41598-020-76828-2
Lo, M., Shahriari, A., Roa, J. N., Tresguerres, M., & Farrell, A. P. (2020). Differential effects of bicarbonate on severe hypoxia- and hypercapnia-induced cardiac malfunctions in diverse fish species. Journal of Comparative Physiology B-Biochemical Systems and Environmental Physiology. https://doi.org/10.1007/s00360-020-01324-y
Nadler, L. E., Bengston, E., Eliason, E. J., Hassibi, C., Helland-Riise, S. H., Johansen, I. B., Kwan, G. T., Tresguerres, M., Turner, A. V., Weinersmith, K. L., Overli, O., & Hechinger, R. F. (2020). A brain-infecting parasite impacts host metabolism both during exposure and after infection is established. Functional Ecology. https://doi.org/10.1111/1365-2435.13695
Damsgaard, C., Lauridsen, H., Harter, T. S., Kwan, G. T., Thomsen, J. S., Funder, A. M. D., Supuran, C. T., Tresguerres, M., Matthews, P. G. D., & Brauner, C. J. (2020). A novel acidification mechanism for greatly enhanced oxygen supply to the fish retina. Elife, 9. https://doi.org/10.7554/eLife.58995
Barott, K. L., Venn, A. A., Thies, A. B., Tambutte, S., & Tresguerres, M. (2020). Regulation of coral calcification by the acid-base sensing enzyme soluble adenylyl cyclase. Biochemical and Biophysical Research Communications, 525(3), 576–580. https://doi.org/10.1016/j.bbrc.2020.02.115
Kwan, G. T., Smith, T. R., & Tresguerres, M. (2020). Immunological characterization of two types of ionocytes in the inner ear epithelium of Pacific Chub Mackerel (Scomber japonicus). Journal of Comparative Physiology B-Biochemical Systems and Environmental Physiology. https://doi.org/10.1007/s00360-020-01276-3
Tresguerres, M., Clifford, A. M., Harter, T. S., Roa, J. N., Thies, A. B., Yee, D. P., & Brauner, C. J. (2020). Evolutionary links between intra- and extracellular acid-base regulation in fish and other aquatic animals. Journal of Experimental Zoology Part A-Ecological and Integrative Physiology. https://doi.org/10.1002/jez.2367
Cyronak, T., Takeshita, Y., Courtney, T. A., DeCarlo, E. H., Eyre, B. D., Kline, D. I., Martz, T., Page, H., Price, N. N., Smith, J., Stoltenberg, L., Tresguerres, M., & Andersson, A. J. (2020). Diel temperature and pH variability scale with depth across diverse coral reef habitats. Limnology and Oceanography Letters. https://doi.org/10.1002/lol2.10129
Luquet, C. M., Genovese, G., & Tresguerres, M. (2020). Gas exchange and acid-base balance. In E Rodriguez and T Luppi (Ed.), in Neohelice granulata: A model species for biological studies on crustaceans (pp. 319–336). Cambridge Scholars Publishing.
Yee, D. P., Hildebrand, M., & Tresguerres, M. (2019). Dynamic subcellular translocation of V-type H+-ATPase is essential for biomineralization of the diatom silica cell wall. New Phytologist. https://doi.org/10.1111/nph.16329
Carnacho-Jimenez, L., Leyva-Carrillo, L., Peregrino-Uriarte, A. B., Duarte-Gutierrez, J. L., Tresguerres, M., & Yepiz-Plascencia, G. (2019). Regulation of glyceraldehyde-3-phosphate dehydrogenase by hypoxia inducible factor 1 in the white shrimp Litopenaeus vannamei during hypoxia and reoxygenation. Comparative Biochemistry and Physiology A-Molecular & Integrative Physiology, 235, 56–65. https://doi.org/10.1016/j.cbpa.2019.05.006
Roa, J. N., & Tresguerres, M. (2019). Differential glycogen utilization in shark acid- and base-regulatory gill cells. Journal of Experimental Biology, 222(10). https://doi.org/10.1242/jeb.199448
Kwan, G. T., Wexler, J. B., Wegner, N. C., & Tresguerres, M. (2019). Ontogenetic changes in cutaneous and branchial ionocytes and morphology in yellowfin tuna (Thunnus albacares) larvae. Journal of Comparative Physiology B-Biochemical Systems and Environmental Physiology, 189(1), 81–95. https://doi.org/10.1007/s00360-018-1187-9
Barron, M. E., Thies, A. B., Espinoza, J. A., Barott, K. L., Hamdoun, A., & Tresguerres, M. (2018). A vesicular Na+/Ca2+ exchanger in coral calcifying cells. PLOS ONE, 13(10). https://doi.org/10.1371/journal.pone.0205367
Armstrong, E. J., Roa, J. N., Stillman, J. H., & Tresguerres, M. (2018). Symbiont photosynthesis in giant clams is promoted by V-type H+-ATPase from host cells. Journal of Experimental Biology, 221(18). https://doi.org/10.1242/jeb.177220
Hamilton, T. J., Kline, D. I., & Tresguerres, M. (2018). Shoaling behaviour is differentially altered by ethanol and dopamine D1 receptor modulators in tropical marine forage fish. Canadian Journal of Fisheries and Aquatic Sciences, 75(7), 999–1004. https://doi.org/10.1139/cjfas-2018-0084
Hill, R. W., Armstrong, E. J., Inaba, K., Morita, M., Tresguerres, M., Stillman, J. H., Roa, J. N., & Kwan, G. T. (2018). Acid secretion by the boring organ of the burrowing giant clam, Tridacna crocea. Biology Letters, 14(6). https://doi.org/10.1098/rsbl.2018.0047
Tresguerres, M., & Salmerón, C. (2018). Chapter Seventeen - Molecular, Enzymatic, and Cellular Characterization of Soluble Adenylyl Cyclase From Aquatic Animals. In B. S. Moore (Ed.), Methods in Enzymology (Vol. 605, pp. 525–549). Academic Press.
Barott, K. L., Barron, M. E., & Tresguerres, M. (2017). Identification of a molecular pH sensor in coral. Proceedings of the Royal Society B: Biological Sciences, 284. https://doi.org/10.1098/rspb.2017.1769
Hamilton, T. J., Morrill, A., Lucas, K., Gallup, J., Harris, M., Healey, M., Pitman, T., Schalomon, M., Digweed, S., & Tresguerres, M. (2017). Establishing zebrafish as a model to study the anxiolytic effects of scopolamine. Scientific Reports, 7(1), 15081. https://doi.org/10.1038/s41598-017-15374-w