Volume 8, Number 7—July 2002
Research
Ecologic Niche Modeling and Potential Reservoirs for Chagas Disease, Mexico.
Table
Distribution % of triatomine overlapping Neotoma |
||||||||||
---|---|---|---|---|---|---|---|---|---|---|
N. phenax | N. palatina | N. micropus | N. mexicana | N. lepida | N. goldmani | N. fuscipes | N. angustapalata | N. albigula | n | |
Triatoma barberi |
0.0 |
2.5 |
45.1 |
98.4 |
0.0 |
0.1 |
0.0 |
0.0 |
30.0 |
86 |
T. sinaloensis |
95.5 |
0.0 |
50.8 |
51.5 |
0.0 |
0.0 |
0.0 |
0.0 |
0.0 |
9 |
T. peninsularis |
0.0 |
0.0 |
0.0 |
9.0 |
93.8 |
0.0 |
82.0 |
0.0 |
1.7 |
9 |
T. p. woodi |
0.0 |
0.0 |
94.6 |
50.0 |
0.0 |
33.3 |
0.0 |
0.0 |
96.1 |
7 |
T. p. protracta |
4.4 |
0.0 |
6.9 |
9.2 |
24.4 |
0.0 |
39.3 |
0.0 |
14.1 |
13 |
T. p. zacatecensis |
0.0 |
0.0 |
100.0 |
100.0 |
0.0 |
24.3 |
0.0 |
0.0 |
100.0 |
9 |
Points available | 31 | 5 | 69 | 103 | 16 | 13 | 4 | 5 | 156 |
aShown in bold are Neotoma species independently identified as hosts for particular Triatoma species (1). Distributions are to the highest confidence interval.
References
- Ryckman RE. Biosystematics and hosts of the Triatoma protracta complex in North America (Hemiptera: Reduviidae) (Rodentia: Cricetidae). University of California Publications in Entomology. 1962;27:93–240.
- Lent H, Wygodzinsky P. Revision of the Triatominae (Hemiptera: Reduviidae) and their significance as vectors of Chagas disease. Bull Am Mus Nat Hist. 1979;163:125–520.
- Peterson AT, Stockwell DRB, Kluza DA. Distribution prediction based on ecologic niche modeling of primary occurrence data. In: Scott JM, editor. Predicting species occurrences: issues of scale and accuracy. Washington: Island Press; 2001.
- MacArthur RH. Geographical ecology. Princeton (NJ): Princeton University Press; 1972.
- Gomez-Torres R, Rodríguez-Vázquez ML, Mooser-Barandum O, Ramirez-Isunza JM. Enfermedad de Chagas en el estado de Aguascalientes. Arch Inst Cardiol Mex. 1983;53:139–42.PubMedGoogle Scholar
- Magallon-Gastélum E, Magdaleno-Peñaloza NC, Katthain-Duchateau G, Trujillo-Contreras F, Lozano-Kasten FJ, Hernández-Gutiérrez RJ. Distribución de los vectores de la enfermedad de Chagas (Hemiptera: Reduviidae: Triatominae), en el estado de Jalisco, México. Revista Biomedica. 1998;9:151–7.
- Ramsey J, Ordoñez R, Cruz-Celis A, Alvear A, Chavez V, Lopez R, Distribution of domestic Triatominae and stratification of Chagas disease transmission in Oaxaca, México. Med Vet Entomol. 2000;14:19–30. DOIPubMedGoogle Scholar
- Rojas JC, Malo EA, Espinoza-Medinilla E, Ondarza RN. Sylvatic focus of Chagas disease in Oaxaca, Mexico. Ann Trop Med Parasitol. 1989;83:115–20.PubMedGoogle Scholar
- Tay J. La enfermedad de Chagas en la República Mexicana. Revista Salud Pública de Mexico. 1980;22:409–50.
- Zarate LG, Zarate RJ. A checklist of the Triatominae (Hemiptera: Reduvidae) of Mexico. International Journal of Entomology. 1985;27:102–27.
- Vidal-Acosta V, Ibañez-Bernal S, Martínez-Campos C. Infección natural de chinches Triatominae con Trypanosoma cruzi asociadas a la vivienda humana en México. Salud Publica Mex. 2000;42:496–503. DOIPubMedGoogle Scholar
- Hall ER. The mammals of North America, vol. 2. New York: Wiley & Sons; 1981.
- Stockwell DRB. Genetic algorithms II. In: Fielding AH, editor. Machine learning methods for ecologic applications. Boston: Kluwer Academic Publishers; 1999. p. 123–44.
- Stockwell DRB, Noble IR. Induction of sets of rules from animal distribution data: a robust and informative method of analysis. Math Comput Simul. 1992;33:385–90. DOIGoogle Scholar
- Stockwell DRB, Peters DP. The GARP modelling system: problems and solutions to automated spatial prediction. Int J Geogr Inf Sci. 1999;13:143–58. DOIGoogle Scholar
- Grinnell J. Field tests of theories concerning distribution control. Am Nat. 1917;51:115–28. DOIGoogle Scholar
- Peterson AT, Cohoon KC. Sensitivity of distribution prediction algorithms to geographic data completeness. Ecol Modell. 1999;117:159–64. DOIGoogle Scholar
- Peterson AT, Soberon J, Sánchez-Cordero V. Conservatism of ecologic niches in evolutionary time. Science. 1999;285:1265–7. DOIPubMedGoogle Scholar
- Peterson AT, Vieglais DA. Predicting species invasions using ecologic niche modeling. Bioscience. 2001;51:363–71. DOIGoogle Scholar
- Peterson AT. Predicting species’ distributions based on ecologic niche modeling. Condor. 2001;103:599–605. DOIGoogle Scholar
- Peterson AT, Ball LG, Cohoon KC. Predicting distributions of tropical birds. Ibis. 2002. In press.
- Stockwell DRB, Peterson AT. Controlling bias in biodiversity data. In: Scott JM, editor. Predicting species occurrences: issues of scale and accuracy. Washington: Island Press. In press 2001.
- Feria ATP, Peterson AT. Prediction of bird community composition based on point-occurrence data and inferential algorithms: a valuable tool in biodiversity assessments. Divers Distrib. 2002;8:49–56. DOIGoogle Scholar
- Peterson AT, Sánchez-Cordero V, Soberón J, Bartley J, Buddemeier RW, Navarro-Sigüenza AG. Effects of global climate change on geographic distributions of Mexican Cracidae. Ecol Modell. 2001;144:21–30. DOIGoogle Scholar
- Peterson AT, Ortega-Huerta M, Bartley J, Sánchez-Cordero V, Soberón J, Buddemeier RH, Biodiversity consequences of global climate change in Mexico. Nature. 2002. In press.PubMedGoogle Scholar
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