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9129767 S3IUQRV6 1 apa 50 date desc year Wangpreseurt 18 https://dwangpraseurt.scrippsprofiles.ucsd.edu/wp-content/plugins/zotpress/
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Blocker, E. R., Werdell, P. J., Ibrahim, A., Behrenfeld, M. J., Bisson, K. M., Boss, E., Franz, B. A., & Frouin, R. (2025). Annual periodicity in ocean color observations across diverse oceanic regions. Applied Optics, 64(25), 7376. https://doi.org/10.1364/AO.566299
Levy, N., Kundu, S., Freckelton, M., Dinasquet, J., Flores, I., Galindo-Martínez, C. T., Tresguerres, M., De La Garza, V., Sun, Y., Karimi, Z., Drury, C., Jury, C. P., Hancock, J. R., Chen, S., Hadfield, M. G., R3D Consortium, Jones, B., Levy, J., Mahaffey, S., … Wangpraseurt, D. (2025). Microbial living materials promote coral larval settlement. PNAS Nexus, 4(9), pgaf268. https://doi.org/10.1093/pnasnexus/pgaf268
Thies, A. B., Rangarajan-Paul, M., Wangpraseurt, D., & Tresguerres, M. (2025). Co-option of immune and digestive cellular machinery to support photosymbiosis in amoebocytes of the upside-down jellyfish Cassiopea xamachana. Journal of Experimental Biology, 228(14), jeb249849. https://doi.org/10.1242/jeb.249849
Ben‐Zvi, O., Roberts, P., Ratelle, D., Snider, J., Lertvilai, P., Wangpraseurt, D., Deheyn, D. D., Smith, J. E., & Jaffe, J. S. (2025). The Benthic Underwater Microscope imaging PAM ( BUMP ): A non‐invasive tool for in situ assessment of microstructure and photosynthetic efficiency. Methods in Ecology and Evolution, 2041-210X.70078. https://doi.org/10.1111/2041-210X.70078
Yee, D. P., Juery, C., Toullec, G., Catacora‐Grundy, A., Lekieffre, C., Wangpraseurt, D., & Decelle, J. (2025). Physiology and metabolism of eukaryotic microalgae involved in aquatic photosymbioses. New Phytologist, nph.70190. https://doi.org/10.1111/nph.70190
Karimi, Z., Flores, I., Kolle, S., Kundu, S., Walton, E., Badder, L., Levy, N., Berry, D. B., Schar, D., Levy, J., Aizenberg, J., R3D Consortium, & Wangpraseurt, D. (2025). Mitigating Algal Competition with Fouling-Prevention Coatings for Coral Restoration and Reef Engineering. ACS Sustainable Chemistry & Engineering, 13(16), 5808–5817. https://doi.org/10.1021/acssuschemeng.4c07508
Kramer, N., Galindo-Martínez, C. T., Jacques, S. L., Tresguerres, M., Loya, Y., & Wangpraseurt, D. (2025). Depth-dependent microskeletal features modify light harvesting in Turbinaria reniformis corals. iScience, 28(8), 113137. https://doi.org/10.1016/j.isci.2025.113137
Kramer, N., Amit, T., Gavrieli, N., Gross, M., Wangpraseurt, D., & Loya, Y. (2024). Quantifying attributes of boring bivalve populations in corals using micro-computed tomography. Frontiers in Marine Science, 11, 1407537. https://doi.org/10.3389/fmars.2024.1407537
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
Chua, S. T., Smith, A., Murthy, S., Murace, M., Yang, H., Schertel, L., Kühl, M., Cicuta, P., Smith, A. G., Wangpraseurt, D., & Vignolini, S. (2024). Light management by algal aggregates in living photosynthetic hydrogels. Proceedings of the National Academy of Sciences, 121(23), e2316206121. https://doi.org/10.1073/pnas.2316206121
Peixoto, R. S., Voolstra, C. R., Baums, I. B., Camp, E. F., Guest, J., Harrison, P. L., Montoya-Maya, P. H., Pollock, F. J., Smith, D. J., Wangpraseurt, D., Banaszak, A. T., Chui, A. P. Y., Shah, N., Moore, T., Fabricius, K. E., Vardi, T., & Suggett, D. J. (2024). The critical role of coral reef restoration in a changing world. Nature Climate Change, 14(12), 1219–1222. https://doi.org/10.1038/s41558-024-02202-z
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
Datta, D., Weiss, E. L., Wangpraseurt, D., Hild, E., Chen, S., Golden, J. W., Golden, S. S., & Pokorski, J. K. (2023). Phenotypically complex living materials containing engineered cyanobacteria. Nature Communications, 14(1), 4742. https://doi.org/10.1038/s41467-023-40265-2
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
You, S., Xiang, Y., Hwang, H. H., Berry, D. B., Kiratitanaporn, W., Guan, J., Yao, E., Tang, M., Zhong, Z., Ma, X., Wangpraseurt, D., Sun, Y., Lu, T., & Chen, S. (2023). High cell density and high-resolution 3D bioprinting for fabricating vascularized tissues. Science Advances, 9(8), eade7923. https://doi.org/10.1126/sciadv.ade7923
Kramer, N., Tamir, R., Galindo-Martínez, C. T., Wangpraseurt, D., & Loya, Y. (2023). Light pollution alters the skeletal morphology of coral juveniles and impairs their light capture capacity. Marine Pollution Bulletin, 193, 115212. https://doi.org/10.1016/j.marpolbul.2023.115212
Jaffe, J. S., Schull, S., Kühl, M., & Wangpraseurt, D. (2022). Non-invasive estimation of coral polyp volume and surface area using optical coherence tomography. Frontiers in Marine Science, 9, 1049440. https://doi.org/10.3389/fmars.2022.1049440
Kramer, N., Guan, J., Chen, S., Wangpraseurt, D., & Loya, Y. (2022). Morpho-functional traits of the coral Stylophora pistillata enhance light capture for photosynthesis at mesophotic depths. Communications Biology, 5(1), 861. https://doi.org/10.1038/s42003-022-03829-4
Bollati, E., Lyndby, N. H., D’Angelo, C., Kühl, M., Wiedenmann, J., & Wangpraseurt, D. (2022). Green fluorescent protein-like pigments optimise the internal light environment in symbiotic reef-building corals. eLife, 11, e73521. https://doi.org/10.7554/eLife.73521
Wangpraseurt, D., You, S. T., Sun, Y. Z., & Chen, S. C. (2022). Biomimetic 3D living materials powered by microorganisms. Trends in Biotechnology, 40(7), 843–857. https://doi.org/10.1016/j.tibtech.2022.01.003
Martin, N., Bernat, T., Dinasquet, J., Stofko, A., Damon, A., Deheyn, D. D., Azam, F., Smith, J. E., Davey, M. P., Smith, A. G., Vignolini, S., & Wangpraseurt, D. (2021). Synthetic algal-bacteria consortia for space-efficient microalgal growth in a simple hydrogel system. Journal of Applied Phycology. https://doi.org/10.1007/s10811-021-02528-7
Uwizeye, C., Brisbin, M. M., Gallet, B., Chevalier, F., LeKieffre, C., Schieber, N. L., Falconet, D., Wangpraseurt, D., Schertel, L., Stryhanyuk, H., Musat, N., Mitarai, S., Schwab, Y., Finazzi, G., & Decelle, J. (2021). Cytoklepty in the plankton: A host strategy to optimize the bioenergetic machinery of endosymbiotic algae. Proceedings of the National Academy of Sciences of the United States of America, 118(27), 11. https://doi.org/10.1073/pnas.2025252118
Lyndby, N. H., Holm, J. B., Wangpraseurt, D., Grover, R., Rottier, C., Kuhl, M., & Ferrier-Pages, C. (2020). Effect of temperature and feeding on carbon budgets and O-2 dynamics in Pocillopora damicornis. Marine Ecology Progress Series, 652, 49–62. https://doi.org/10.3354/meps13474
Wangpraseurt, D., You, S., Azam, F., Jacucci, G., Gaidarenko, O., Hildebrand, M., Kühl, M., Smith, A. G., Davey, M. P., Smith, A., Deheyn, D. D., Chen, S., & Vignolini, S. (2020). Bionic 3D printed corals. Nature Communications, 11(1), 1748. https://doi.org/10.1038/s41467-020-15486-4
Spicer, G. L. C., Eid, A., Wangpraseurt, D., Swain, T. D., Winkelmann, J. A., Yi, J., Kuhl, M., Marcelino, L. A., & Backman, V. (2019). Measuring light scattering and absorption in corals with Inverse Spectroscopic Optical Coherence Tomography (ISOCT): a new tool for non-invasive monitoring. Scientific Reports, 9. https://doi.org/10.1038/s41598-019-50658-3
Jacques, S. L., Wangpraseurt, D., & Kuhl, M. (2019). Optical properties of living corals determined with diffuse reflectance spectroscopy. Frontiers in Marine Science, 6. https://doi.org/10.3389/fmars.2019.00472