Modeling the transmission of Perkinsus marinus in the Eastern oyster Crassostrea virginica

被引:29
作者
Bidegain, G. [1 ]
Powell, E. N. [1 ]
Klinck, J. M. [1 ]
Hofmann, E. E. [2 ]
Ben-Horin, T. [3 ,4 ]
Bushek, D. [3 ]
Ford, S. E. [3 ]
Munroe, D. M. [3 ]
Guo, X. [3 ]
机构
[1] Univ Southern Mississippi, Gulf Coast Res Lab, 703 East Beach Dr, Ocean Springs, MS 39564 USA
[2] Old Dominion Univ, Ctr Coastal Phys Oceanog, 4111 Monarch Way, Norfolk, VA 23529 USA
[3] Rutgers State Univ, Haskin Shellfish Res Lab, 6959 Miller Ave, Port Norris, NJ 08349 USA
[4] Univ Rhode Isl, Dept Fisheries Anim & Vet Sci, 20A Woodward Hall,9 East Alumni Ave, Kingston, RI 02881 USA
基金
美国国家科学基金会;
关键词
Perkinsus; Oyster; Dermo disease; Transmission model; Basic reproduction number; Fishing; CHESAPEAKE BAY; POPULATION-DYNAMICS; DEVELOP RESISTANCE; DERMO DISEASE; PARASITE; SALINITY; TERM; TEMPERATURE; INFECTIONS; PATHOGEN;
D O I
10.1016/j.fishres.2016.08.006
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Dermo disease caused by the protistan Perkinsus marinus in Eastern oysters Crassotrea virginica is an important source of mortality impacting oyster population dynamics resulting in substantial losses in fisheries and aquaculture. The rapid transmission and spread of the disease minimized the importance of transmission models and past models (proliferation-based models) assumed simple density-dependent transmission or rapid infection post-settlement. This approach is a good approximation only for low population densities. A transmission model was developed for P. marinus in Eastern oysters that accounts for the seasonal change in disease dynamics and density-dependent foraging (of suspended particles) interference among hosts. The model, verified and evaluated against field observations, incorporates parasite release to the water column from live and dead individuals, parasite consumption by living oysters, the diffusion of parasites in the water, body burden-based dose-dependent transmission, recruitment, and disease-caused mortality. The model returns a basic reproduction number R-0 for Dermo much greater than unity (R-0 = 90) in accordance with the current persistence and pandemic nature of this disease in oysters. No population density is obtained that is low enough to suppress Ro below I (i.e. disease extinction). Ro is also estimated for high oyster densities (>300 individuals m(-2)) and particularly for relatively large oysters (similar to 90 mm), today rare but once common before generalized overfishing occurred on healthy oyster reefs. In this scenario, Ro drops below 1, indicating that high oyster density can limit disease invasion through foraging interference and depletion of parasites in the water column. High intensity recruitment events allow the oyster population to attain such densities and limit the development of epizootics. These results provide insight into the transition from past populations, where Dermo is inferred to have been limited in its impact, to the current persistent and pandemic nature of this disease. Further coupling of this model into metapopulation and hydrodynamic models could be a promising tool to support management decision-making for bivalve populations impacted by Dermo disease. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:82 / 93
页数:12
相关论文
共 93 条
  • [1] ANDERSON R M, 1991
  • [2] Andrews J., 1988, American Fisheries Society Special Publications - Am Fish Soc Symp, V18, P47
  • [3] Real-time PCR investigation of parasite ecology:: in situ determination of oyster parasite Perkinsus marinus transmission dynamics in lower Chesapeake Bay
    Audemard, C.
    Calvo, L. M. Ragone
    Paynter, K. T.
    Reece, K. S.
    Burreson, E. M.
    [J]. PARASITOLOGY, 2006, 132 : 827 - 842
  • [4] Microparasitic disease dynamics in benthic suspension feeders: Infective dose, non-focal hosts, and particle diffusion
    Bidegain, G.
    Powell, E. N.
    Klinck, J. M.
    Ben-Horin, T.
    Hofmann, E. E.
    [J]. ECOLOGICAL MODELLING, 2016, 328 : 44 - 61
  • [5] Marine infectious disease dynamics and outbreak thresholds: contact transmission, pandemic infection, and the potential role of filter feeders
    Bidegain, Gorka
    Powell, Eric N.
    Klinck, John M.
    Ben-Horin, Tal
    Hofmann, Eileen E.
    [J]. ECOSPHERE, 2016, 7 (04):
  • [6] Burreson EM, 1996, J SHELLFISH RES, V15, P17
  • [7] Bushek D, 1997, J SHELLFISH RES, V16, P479
  • [8] Comparison of in vitro-cultured and wild-type Perkinsus marinus.: III.: Fecal elimination and its role in transmission
    Bushek, D
    Ford, SE
    Chintala, MM
    [J]. DISEASES OF AQUATIC ORGANISMS, 2002, 51 (03) : 217 - 225
  • [9] Bushek David, 1994, Annual Review of Fish Diseases, V4, P201, DOI 10.1016/0959-8030(94)90029-9
  • [10] Long-term patterns of an estuarine pathogen along a salinity gradient
    Bushek, David
    Ford, Susan E.
    Burt, Iris
    [J]. JOURNAL OF MARINE RESEARCH, 2012, 70 (2-3) : 225 - 251