{"id":1399,"date":"2021-09-11T17:55:11","date_gmt":"2021-09-11T21:55:11","guid":{"rendered":"https:\/\/www.umes.edu\/crest\/?page_id=1399"},"modified":"2021-09-11T17:55:12","modified_gmt":"2021-09-11T21:55:12","slug":"publications","status":"publish","type":"page","link":"https:\/\/www.umes.edu\/crest\/research\/publications\/","title":{"rendered":"Publications"},"content":{"rendered":"\n<h2 class=\"wp-block-heading\">Recent CREST-CISCEP Publications<\/h2>\n\n\n\n<ol class=\"wp-block-list\"><li>Edje, B. and Chigbu, P. (2021). Carbon and nitrogen stable isotopes of copepods in a tidal estuarine system in Maryland, USA.\u00a0<em>Regional Studies in Marine Science<\/em>. Vol. 42,\u00a0https:\/\/doi.org\/10.1016\/j.rsma.2021.101620.<\/li><li>Chung, S.J. (2020). Role of hepatopancreas trehalose-6-phosphate synthase in carbohydrate levels of the blue crab\u00a0<em>Callinectes sapidus<\/em>\u00a0in feeding and Emersion<em>. J. Shellfish Research<\/em>, 39(2): 449-459.\u00a0 DOI: 10.2983\/035.039.0200.<\/li><li>Edje, B., Ishaque, A.B. and Chigbu, P. (2020). Stable isotopes of carbon and nitrogen reveal storm-driven pollution and contribution of terrestrially derived organic carbon to the MCBs.\u00a0<em>Water<\/em>. 12, 2345; doi:10.3390\/w12092345.<\/li><li>Gurung, D.P., Chen, N., Waguespack, Y., Ruby, D.E., Ishaque, A.B. and Chigbu, P. (2020).\u00a0 Phosphorus speciation and bioavailability in the surface sediments of Maryland Coastal Bays.\u00a0\u00a0<em>Journal of Coastal Research<\/em>. 36 (6): 1266\u20131277<em>.<\/em><\/li><li>Heard, R.W., Morales-N\u00fa\u00f1ez, A.G., Serrano-S\u00e1nchez, M.L., Couti\u00f1o, M.A., Barrag\u00e1n, R. and Vega, F.J. (2020). A new family, genus and species of Tanaidacea (Crustacea; Apseudomorpha) from the Lower Cretaceous (Aptian) of Chiapas, Mexico: Systematic revisions, including designation of two new Paleozoic families, and paleoenvironmental observations.\u00a0<em>Journal of South American Earth Sciences<\/em>, 102: 1\u221229.\u00a0 \u00a0<\/li><li>Kang, X.* and Xia, M. (2020). The Study of the Hurricane-Induced Storm Surge and Bay-Ocean Exchange Using a Nesting Model.\u00a0\u00a0<em>Estuaries and Coasts<\/em>\u00a043: 1610-1624.<\/li><li>Lycett, K.A., Shields, J.D., Chung, J.S., Pitula, J.S. (2020), J.S. (2020). Population Structure of the Blue Crab\u00a0<em>Callinectes sapidus<\/em>\u00a0in the Maryland Coastal Bays. J. of Shellfish Research, 39(3):699-713.<\/li><li>Chigbu, P., Malinis, L.*, Malagon, H.* and Doctor, S. (2019). Influence of temperature on the occurrence and distribution of sand shrimp (<em>Crangon septemspinosa<\/em>) in mid-Atlantic Coastal Lagoons.\u00a0<em>Journal of Crustacean Biology.\u00a0<\/em>39(5): 586-593.<\/li><li>Oghenekaro, E.U.* and Chigbu, P. (2019).\u00a0 Dynamics of mesozooplankton assemblage in relation to environmental factors in the Maryland Coastal Bays.\u00a0<em>Water<\/em>\u00a0<em>11<\/em>(10), 2133; https:\/\/doi.org\/10.3390\/w11102133<em>).<\/em>\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0<\/li><li>Oghenekaro, E.U.* and Chigbu, P. (2019). Population dynamics and life history of marine cladocerans in the Maryland Coastal Bays.\u00a0<em>Journal of Coastal Research.\u00a0<\/em>35(6): 1225-1236.<\/li><li>Oseji, O.F.*, Fan, C., and Chigbu, P. (2019).\u00a0 Composition and dynamics of phytoplankton in the Coastal Bays of Maryland revealed by microscopic counts and diagnostic pigments.\u00a0\u00a0<em>Water\u00a0<\/em>11(2): 368. http:\/\/dx.doi.org\/10.3390\/w11020368 \u00a0<\/li><li>Lycett, K.A.*, Chung, J.S., Pitula, J.S. (2018). The relationship of blue crab (<em>Callinectes sapidus<\/em>) size class and molt stage to disease acquisition and intensity of\u00a0<em>Hematodinium perezi<\/em>\u00a0infections. PLoSOne. Doi.org\/10.1371\/journal.pone.0192237.<\/li><li>Mao, M.* and Xia, M. (2018). Wave-Current Interaction in Maryland Coastal Bay.\u00a0<em>Ocean Modelling<\/em>, 129, 124-144. doi: https:\/\/doi.org\/10.1016\/j.ocemod.2018.08.002.<\/li><li>Mayor, E.D.* and Chigbu, P. (2018).\u00a0 Mysid shrimp dynamics in relation to abiotic and biotic factors in the coastal lagoons of Maryland, Mid-West Atlantic.\u00a0<em>Marine Biology Research<\/em>. 14(3): 1-16. \u00a0<\/li><li>Morales-N\u00fa\u00f1ez, A.G.<sup>+<\/sup>\u00a0and Chigbu, P. (2018).\u00a0 First record of the isopod\u00a0<em>Ianiropsis\u00a0<\/em>cf.\u00a0<em>serricaudis<\/em>\u00a0(Crustacea: Peracarida: Janiridae) in Maryland Coastal Bays, USA.\u00a0\u00a0<em>ZooKeys<\/em>\u00a0747: 115-139.\u00a0<\/li><li>Oseji, O.F.*, Chigbu, P., Oghenekaro, E., Waguespack, Y., and Chen, N. (2018).\u00a0 Spatial and temporal patterns of phytoplankton composition and abundance in the Maryland Coastal Bays: the influence of freshwater discharge and anthropogenic activities.\u00a0<em>Estuarine, Coastal and Shelf Science<\/em>\u00a0207: 119-131.<\/li><li>Kang, X.*, Xia, M., Pitula, J.S., and Chigbu, P. (2017).\u00a0 Dynamics of water and salt exchange in Maryland Coastal Bays.\u00a0\u00a0<em>Estuarine, Coastal and Shelf Science<\/em>\u00a0189: 1-16.<\/li><li>King, M.D.*, R.B. Bryant, L.S. Saporito, A.R. Buda, A.L. Allen, L.A. Hughes, F.M. Hashem, P.J.A.<\/li><li>Kleinman, and E.B. May, (2017). Urea Release by Intermittently Saturated Sediments from a Coastal Agricultural Landscape.\u00a0<em>J. Environ. Qual<\/em>. 46:302\u2013310.<\/li><li>Lycett KA* and Pitula JS. (2017). Disease ecology of\u00a0<em>Hematodinium perezi<\/em>\u00a0in a high salinity estuary: investigating seasonal trends in environmental detection.\u00a0<em>Diseases of Aquatic Organisms<\/em>, 124:169-179. \u00a0<\/li><li>Mayor, E.*, Chigbu, P., Pierson, J., and Kennedy, V.S. (2017).\u00a0 Composition, abundance and life history of mysids (Crustacea: Mysidacea) in the coastal lagoons of Maryland, USA.\u00a0\u00a0<em>Estuaries and Coasts<\/em>\u00a040:224\u2013234; DOI 10.1007\/s12237-016-0131-z. \u00a0\u00a0<\/li><li>Morales-N\u00fa\u00f1ez, A.G., Ulrich S., and Heard R.W. (2017).\u00a0<em>Brachylicoa lui<\/em>, a new species of Parapseudidae (Crustacea: Peracarida: Tanaidacea), from the Hawaiian Islands, with a taxonomic key.\u00a0<em>Zoosystematics and Evolution<\/em>, 93(2): 413-435.<\/li><li>Morales-N\u00fa\u00f1ez A.G., Morales-Ruiz, C., and Ardila, N.E (2017). First record of the family Sphyrapodidae Gu\u0163u, 1980 with the description of a new species of\u00a0<em>Sphyrapus<\/em>\u00a0from the Colombian Caribbean.\u00a0<em>Peer J<\/em>. 5: e3947: 1-36.<\/li><li>Morales-N\u00fa\u00f1ez A.G.<sup>+<\/sup>\u00a0and Chigbu, P. (2017). Abundance, distribution and species composition of amphipods associated with macroalgae from shallow waters of the Maryland Coastal Bays (MCBs).\u00a0<em>Marine Biodiversity;\u00a0<\/em>1-17.<\/li><li>Oghenekaro, E.U.*, Chigbu, P., Oseji, O.F.*, and Tang, K.W. (2017). Seasonal factors influencing the abundance of copepods in the Maryland Coastal Bays.\u00a0<em>Estuaries and Coasts<\/em>, 41(2): 495-506<\/li><li>Peters, R.* and Chigbu, P. (2017).\u00a0 Spatial and temporal patterns of abundance of juvenile black sea bass (<em>Centropristis striata<\/em>) in Maryland Coastal Bays.\u00a0\u00a0<em>Fishery Bulletin<\/em>\u00a0115:504\u2013516. \u00a0<\/li><li>Morales-N\u00fa\u00f1ez A.G.<strong><sup>+<\/sup><\/strong>\u00a0and Chigbu, P. (2016). Life history of\u00a0<em>Dulichiella appendiculata<\/em>\u00a0(Say, 1818) (Amphipoda, Senticaudata, Melitidae) in Maryland Coastal Bays, USA.\u00a0<em>Aquatic Biology<\/em>\u00a025: 75\u201382.<\/li><li>Morales-N\u00fa\u00f1ez A.G.<strong><sup>+<\/sup><\/strong>\u00a0and Chigbu, P. (2016). A new species of\u00a0<em>Apolochus<\/em>\u00a0Hoover &amp; Bousfield, 2001 (Crustacea: Amphipoda: Amphilochidae) from the Maryland Coastal Bays (MCBs), USA.\u00a0<em>ZooKeys\u00a0<\/em>571: 81-104.<\/li><li>Chen,\u00a0J.*, Oseji,\u00a0O., Mitra,\u00a0M., Waguespack, Y. and\u00a0Chen, N. (2016). Phytoplankton Pigments in Maryland Coastal Bay Sediments as Biomarkers of Sources of Organic Matter to Benthic Community.\u00a0<em>J. Coastal Res<\/em>. 32(4): 768 \u2013 775.<\/li><li>Chung, J.S., Pitula, J.S., Schott, E., Alvarez, J.V., Maurer, L. and Lycett, K.A.* (2015). Elevated water temperature increases the levels of reo-like virus and selected innate immunity genes in hemocytes and hepatopancreas of adult female blue crab,\u00a0<em>Callinectes sapidus<\/em>.\u00a0<em>Fish Shellfish Immunol<\/em>. 47:511-20. doi: 10.1016\/j.fsi.2015.09.027.<\/li><li>Duan, S., Chen, N., Kaushal, S., Chigbu, P., Ishaque, A., May, E. and Oseji, O.F.* (2015).\u00a0 Dynamics of dissolved organic carbon and nitrogen in the Maryland Coastal Bays.\u00a0\u00a0<em>Estuarine, Coastal and Shelf Science<\/em>\u00a016: 451-462.<\/li><li>Fan, C., and Warner, R. (2014). Characterization of Water Reflectance Spectra Variability: Implications for Hyperspectral Remote Sensing in Estuarine Waters. Marine Science (4)1: 1-9.<\/li><li>Hanif, A.*, Dyson, W.*, Bowers, H., Messick, G., Jagus, R. and Schott, E. (2013).\u00a0 Variation in temporal and spatial incidence of the crustacean pathogen\u00a0<em>Hematodinium perezi<\/em>\u00a0in environmental samples from Atlantic coastal bays.\u00a0 Aquat. Biosyst. 9:11. Doi.org\/10.1186\/2046-9063-9-11.<\/li><li>Pitula, J.S., Dyson, W.D.*, Bakht, H.B., Njoku, I.* and Chen, F. (2012).\u00a0 Temporal distribution of genetically homogenous \u201cfree-living\u201d\u00a0<em>Hematodinium<\/em>\u00a0sp. in a Delmarva coastal ecosystem.\u00a0 Aquat. Biosyst. 8: 16. Doi.org\/10.1186\/2046-9063-8-16.<\/li><li>Waguespack M.*, Oseji O.*, May E., Mitra, M., Chen N. (2012). HPLC Analysis of Phytoplankton Pigments in Maryland Coastal Bays.\u00a0<em>Journal of Undergraduate Chemistry Research<\/em>\u00a011 (2) 68-71.<\/li><\/ol>\n","protected":false},"excerpt":{"rendered":"<p>Recent CREST-CISCEP Publications Edje, B. and Chigbu, P. (2021). Carbon and nitrogen stable isotopes of copepods in a tidal estuarine system in Maryland, USA.\u00a0Regional Studies in Marine Science. Vol. 42,\u00a0https:\/\/doi.org\/10.1016\/j.rsma.2021.101620. Chung, S.J. (2020). Role of hepatopancreas trehalose-6-phosphate synthase in carbohydrate levels of the blue crab\u00a0Callinectes sapidus\u00a0in feeding and Emersion. J. Shellfish Research, 39(2): 449-459.\u00a0 DOI:&#8230;<\/p>\n","protected":false},"author":1,"featured_media":0,"parent":1389,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_acf_changed":false,"_coblocks_attr":"","_coblocks_dimensions":"","_coblocks_responsive_height":"","_coblocks_accordion_ie_support":"","footnotes":""},"folder":[],"class_list":["post-1399","page","type-page","status-publish","hentry"],"acf":[],"_links":{"self":[{"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/pages\/1399","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/comments?post=1399"}],"version-history":[{"count":0,"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/pages\/1399\/revisions"}],"up":[{"embeddable":true,"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/pages\/1389"}],"wp:attachment":[{"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/media?parent=1399"}],"wp:term":[{"taxonomy":"folder","embeddable":true,"href":"https:\/\/www.umes.edu\/crest\/wp-json\/wp\/v2\/folder?post=1399"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}