INTRINSIC OPTIMUM TEMPERATURE
; RAPID CLIMATE-CHANGE
; DEPENDENT DEVELOPMENT
; NEZARA-VIRIDULA
; POPULATION-DYNAMICS
; BUGS HETEROPTERA
; JAPAN
; IMPACT
; CONSEQUENCES
; PENTATOMIDAE
WOS学科分类:
Entomology
WOS研究方向:
Entomology
英文摘要:
For ectotherms such as insects, their low- and/or high-temperature tolerance is one of the most important traits not only for their physiological as well as ecological and evolutional processes. Here, we review the temperature tolerance of insects in relation to their development and suggest a novel method of specifying low and high threshold temperatures. To date, the upper and lower critical thermal threshold for development as T-min and T-max, respectively, which are derived from nonlinear empirical models, has been extensively used. These indicators, which originated from the artificial empirical models, however, may not be reliable. Consequently, the Sharpe-Schoolfield-Ikemoto (SSI) model which is a nonlinear theoretical model based on thermodynamics, was implemented as an alternative tool to express tolerance temperatures. In the model equation constructed with subunits, when the reversed denominator (P-2 function) is maximum (nearly 100% in general), it denotes the probability of an enzyme being in the almost fully-active state of the intrinsic optimum temperature (T-Phi). The profile of the P-2 function shows a peak at the T-Phi temperature and the two temperatures of T-L50 and T-H50 which indicate the 50% active and 50% inactive state (P-2 = 50%), respectively, are given as parameters in the P-2 function of the SSI model. Even so, it is possible to select any values within the range of 0
1.Teikyo Univ, Sch Med, Dept Microbiol, Tokyo, Tokyo 1738605, Japan 2.Natl Inst Agroenvironm Sci, Tsukuba, Ibaraki 3058604, Japan
Recommended Citation:
Ikemoto, Takaya,Kiritani, Keizi. Novel Method of Specifying Low and High Threshold Temperatures Using Thermodynamic SSI Model of Insect Development[J]. ENVIRONMENTAL ENTOMOLOGY,2019-01-01,48(3):479-488