Fish and Fisheries in Estuaries

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Fish and Fisheries in Estuaries: A Global Perspective Thirteen in-depth chapters and two method appendices examine major aspects of fish and fisheries in estuaries throughout the world. The text describes the biology of estuarine fish and their connections with estuarine and adjacent marine and freshwater ecosystems, as well as examining the ways human industrialization and global events such as climate change are impacting both native and non-native species. Topics include habitat diversity, fish foraging behavior, ecological engineering tools and models, hazards and risks to estuarine fish and fisheries, and estuarine environmental health. Offering detailed information on the biology and ecology of estuarine fish and fisheries, this authoritative reference:
Explores current approaches and future research directions aimed at achieving a balance between exploitation and conservation of estuarine fishes Discusses environmental quality objectives and sustainable management of estuary fisheries Addresses the impacts of increased human use of resources such as food, space, and water to estuarine fish and fisheries Features numerous international case studies of management of fisheries, threatened species, estuarine rehabilitation, reproduction and ontogeny, and others Covers study and sampling methods, field equipment, and data processing, analysis, and interpretation
is an indispensable tool and reference point for fish biologists, fisheries scientists, ecologists and environmental scientists, aquatic ecologists, conservation biologists, estuarine managers and advanced students and instructors in fish biology and fisheries programs.

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657 Rooker, J.R., Holt, G.J. & Holt, S.A. 1997. Condition of larval and juvenile red drum (Sciaenops ocellatus) from estuarine nursery habitats. Marine Biology 127, 387–394.

658 Rooker, J.R., Holt, S.A., Holt, G.J., et al. 1999. Spatial and temporal variability in growth, mortality, and recruitment potential of postsettlement red drum, Sciaenops ocellatus, in a subtropical estuary. Fishery Bulletin U.S. 97, 581–590.

659 Rooper, C.N., Gunderson, D.R. & Hickey, B.M. 2006. An examination of the feasibility of passive transport from coastal spawning grounds to estuarine nursery areas for English sole. Estuarine, Coastal and Shelf Science 68, 609–618.

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667 Rowe, P.M. & Epifanio, C.E. 1994a. Tidal stream transport of weakfish larvae in Delaware Bay, USA. Marine Ecology Progress Series 110, 105–114.

668 Rowe, P.M. & Epifanio, C.E. 1994b. Flux and transport of larval weakfish in Delaware Bay, USA. Marine Ecology Progress Series 110, 115–120.

669 Rubec, P.J., Lewis, J.M., Shirley, M.A., et al. 2006. Relating changes in freshwater inflow to species distribution in Rookery Bay, Florida, via habitat suitability modeling and mapping. Proceedings of the Gulf and Caribbean Fisheries Institute 57, 61–75.

670 Ruiz, G.M., Hines, A.H. & Posey, M.H. 1993. Shallow water as a refuge habitat for fish and crustaceans in non‐vegetated estuaries: an example from Chesapeake Bay. Marine Ecology Progress Series 99, 1–16.

671 Rutherford, E.S. & Houde, E.D. 1995. The influence of temperature on cohort‐specific growth, survival, and recruitment of striped bass, Morone saxatilis, larvae in Chesapeake Bay. Fishery Bulletin U.S. 93, 315–332.

672 Rutherford, E.S., Houde, E.D. & Nyman, R.M. 1997. Relationship of larval‐stage growth and mortality to recruitment of striped bass, Morone saxatilis, in Chesapeake Bay. Estuaries 20, 174–198.

673 Sakowicz, G.P. 2003. Comparative morphology and behavior of larval salt marsh fishes: Fundulus heteroclitus and Cyprinodon variegatus . M.S. Thesis, Rutgers University, New Brunswick, NJ.

674 Saltonstall, K. 2002. Cryptic invasion of a non‐native genotype of the common reed, Phragmites australis, into North America. Proceedings of the National Academy of Sciences of the United State of America 99, 2445–2449.

675 Salvador, N.L.A. & Muelbert, J.H. 2019. Environmental variability and body condition of Argentine menhaden larvae, Brevoortia pectinata (Jenyns, 1842), in estuarine and coastal waters. Estuaries and Coasts 42, 1654–1661.

676 Sanford, L.P., Suttles, S.E. & Halka, J.R. 2001. Reconsidering the physics of the Chesapeake Bay estuarine turbidity maximum. Estuaries 24, 655–669.

677 Santos, R.O., Schinbeckler, R., Viadero, N., et al. 2019. Linking bonefish (Albula vulpes) populations to nearshore estuarine habitats using an otolith microchemistry approach. Environmental Biology of Fishes 102, 267–283.

678 Schaffler, J.J., Reiss, C.S. & Jones, C.M. 2009. Patterns of larval Atlantic croaker ingress into Chesapeake Bay, USA. Marine Ecology Progress Series 378, 187–197.

679 Scharf, F.S. 2000. Patterns in abundance, growth, and mortality of juvenile red drum across estuaries on the Texas coast with implications for recruitment and stock enhancement. Transactions of the American Fisheries Society 129, 1207–1222.

680 Schieler, B.M., Hale, E.A. & Targett, T.E. 2014. Daily variation in ingress of fall‐spawned larval fishes into Delaware Bay in relation to alongshore and along‐estuary wind components. Estuarine, Coastal and Shelf Science 151, 141–147.

681 Schnack, D. 1974. On the biology of herring larvae in the Schlei Fjord, western Baltic. Rapports et Procès ‐verbaux des Réunions du Conseil International pour I'Exploration de la Mer 166, 114–123.

682 Schreier, A.D. & Stevens, P. 2020. Further evidence for lower Columbia River green sturgeon spawning. Environmental Biology of Fishes 103, 201–208.

683 Schubel, J.R. 1968. Turbidity maximum of the northern Chesapeake Bay. Science 161, 1013–1015.

684 Schultz, E.T., Cowen, R.K., Lwiza, K.M.M., et al. 2000. Explaining advection: do larval bay anchovy (Anchoa mitchilli) show selective tidal‐stream transport? Journal of Marine Science 57, 360–371.

685 Schultz, E.T., Lwiza, K.M.M., Fencil, M.C., et al. 2003. Mechanisms promoting upriver transport of larvae of two fish species in the Hudson River estuary. Marine Ecology Progress Series 251, 263–267.

686 Schultz, E.T., Lwiza, K.M.M., Young, J.R., et al. 2005b. The dynamics of bay anchovy in the Hudson River estuary: process‐oriented studies and long‐term changes. University of Connecticut, Ecology and Evolution Articles 34. https://opencommons.uconn.edu/eeb_articles/34.

687 Schultz, E.T., Young, J., Martin, J.M., et al. 2005a. Tracking cohorts: analysis of migration in the early life stages of an estuarine fish. Estuaries 28, 394–405.

688 Secor, D.H. 1999. Specifying divergent migrations in the concept of stock: the contingent hypothesis. Fisheries Research 43, 13–34.

689 Secor, D.H. 2000. Spawning in the nick of time? Effect of adult demographics on spawning behaviour and recruitment in Chesapeake Bay striped bass. ICES Journal of Marine Science 57, 403–411.

690 Secor, D.H. 2002. Historical roots of the migration triangle. ICES Marine Science Symposia 215, 323–329.

691 Secor, D.H. 2015. Migration Ecology of Marine Fishes. Johns Hopkins University Press, Baltimore.

692 Secor, D.H., Anders, P.J., Van Winkle, W., et al. 2002. Can we study sturgeons to extinction? What we do and don’t know about the conservation of North American sturgeons. American Fisheries Society Symposium 28, 3–10.

693 Secor, D.H. & Gunderson, T.E. 1998. Effects of hypoxia and temperature on survival, growth, and respiration of juvenile Atlantic sturgeon, Acipenser oxyrinchus . Fishery Bulletin U.S. 96, 603–613.

694 Secor, D.H. & Houde, E.D. 1995. Temperature effects on the timing of striped bass egg production, larval viability, and recruitment potential in the Patuxent River (Chesapeake Bay). Estuaries 18, 527–544.

695 Secor, D.H., Houde, E.D. & Kellogg, L.L. 2017. Estuarine retention and production of striped bass larvae: a mark‐recapture experiment. ICES Journal of Marine Science 74, 1735–1748.

696 Secor, D.H., Houde, E.D. & Monteleone, D.M. 1995. A mark‐release experiment on larval striped bass, Morone saxatilis, in a Chesapeake Bay tributary. ICES Journal of Marine Science 52, 87–101.

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