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갓끈동부콩에서 아카시아진딧물[Aphis craccivora Koch (Hemiptera: Aphididae)]의 온도발육, 성충 수명과 산란 및 생명표분석

Thermal Effects on the Development, Fecundity and Life Table Parameters of Aphis craccivora Koch (Hemiptera: Aphididae) on Yardlong Bean (Vigna unguiculata subsp. sesquipedalis (L.))

  • 조점래 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 김정환 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 최병렬 (농림축산검역본부 식물검역부 위험관리과) ;
  • 서보윤 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 김광호 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 지창우 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 박창규 (국립한국농수산대학 산업곤충학과) ;
  • 안정준 (농촌진흥청 국립원예특작과학원 온난화대응농업연구소)
  • Cho, Jum Rae (Crop Protection Division, Department of Crop Life Safety, National Institute of Agricultural Sciences, RDA) ;
  • Kim, Jeong-Hwan (Crop Protection Division, Department of Crop Life Safety, National Institute of Agricultural Sciences, RDA) ;
  • Choi, Byeong-Ryeol (Risk Management Division, Department of Plant Quarantine, Animal and Plant Quarantine Agency) ;
  • Seo, Bo-Yoon (Crop Protection Division, Department of Crop Life Safety, National Institute of Agricultural Sciences, RDA) ;
  • Kim, Kwang-Ho (Crop Protection Division, Department of Crop Life Safety, National Institute of Agricultural Sciences, RDA) ;
  • Ji, Chang Woo (Crop Protection Division, Department of Crop Life Safety, National Institute of Agricultural Sciences, RDA) ;
  • Park, Chang-Gyu (Department of Industrial Entomology, Korea National College of Agricultural and Fisheries) ;
  • Ahn, Jeong Joon (Research Institute of Climate Change and Agriculture, National Institute of Horticultural and Herbal Science, RDA)
  • 투고 : 2018.06.19
  • 심사 : 2018.09.18
  • 발행 : 2018.12.01

초록

아카시아진딧물은 다양한 기주식물을 먹이로 하는 곤충으로 전 세계적으로 분포하고 있다. 본 연구는 아카시아진딧물 약충의 발육기간, 무시성충의 수명과 번식능력을 조사하기 위하여 10.0, 15.0, 20.0, 25.0, 30.0, $32.5^{\circ}C$ 정온조건에서 실험을 실시하였다. 조사된 모든 항온조건에서 아카시아진딧물은 성공적으로 성충으로 발육하였고 발육율은 온도가 상승할수록 증가하였다. 아카시아진딧물 약충시기별 발육영점온도와 유효적산일은 선형회귀분석 방법을 이용하여 계산하였다. SSI모델을 이용하여 발육최저, 최고한계를 추정하였다. 아카시아진딧물 전체약충기간의 발육영점온도와 유효적산일은 각각 $5.3^{\circ}C$과 128.4DD였다. SSI모델을 이용한 아카시아진딧물의 발육최저, 최고온도는 $17.0^{\circ}C$$34.6^{\circ}C$였으며 이들간의 차이는 $17.5^{\circ}C$였다. 전체약충기간의 발육완료분포모형은 3-매개변수 Weibull함수를 이용하여 나타내었다. 온도와 관련된 아카시아진딧물의 생물적 특성을 생명표분석을 통해 나타내었다. 내적자연증가율은 $25^{\circ}C$에서, 개체군순증가율은 $20^{\circ}C$에서 가장 높았다. 다른 지역에 서식하는 아카시아진딧물의 생물적 특성을 비교 분석하였다.

The cowpea aphid Aphis craccivora Koch (Hemiptera: Aphididae) is a polyphagous species with a worldwide distribution. We investigated the temperature effects on development periods of nymphs, and the longevity and fecundity of apterous female of A. craccivora. The study was conducted at six constant temperatures of 10.0, 15.0, 20.0, 25, 30.0, and $32.5^{\circ}C$. A. craccivora developed successfully from nymph to adult stage at all temperatures subjected. The developmental rate of A. craccivora increased as temperature increased. The lower developmental threshold (LT) and thermal constant (K) of A. craccivora nymph stage were estimated by linear regression as $5.3^{\circ}C$ and 128.4 degree-days (DD), respectively. Lower and higher threshold temperatures (TL, TH and TH-TL, respectively) were calculated by the Sharpe_Schoolfield_Ikemoto (SSI) model as $17.0^{\circ}C$, $34.6^{\circ}C$ and $17.5^{\circ}C$. Developmental completion of nymph stages was described using a three-parameter Weibull function. Life table parameters were estimated. The intrinsic rate of increase was highest at $25^{\circ}C$, while the net reproductive rate was highest at $20^{\circ}C$. Biological characteristics of A. craccivora populations from different geographic areas were discussed.

키워드

OOGCBV_2018_v57n4_261_f0001.png 이미지

Fig. 1. A: Linear and nonlinear functions fitted to the data of developmental rate (day-1) for total nymph period of Aphis craccivora, B: P2(T) is the probability that rate-controlling enzyme is in the active stage. The closed three squares from left to right represent the development rates at TL, Tϕ an TH. TL and TH which are temperatures at which the control enzyme has equal probability to be active or inactive by low or high temperature inactivation, and Tϕ is the intrinsic optimum temperature. C: Cumulative proportions of development completion for total nymph period of A. craccivora.

OOGCBV_2018_v57n4_261_f0002.png 이미지

Fig. 2. Simulated temperature-dependent adult emergence of Aphis craccivora using nonlinear function.

OOGCBV_2018_v57n4_261_f0003.png 이미지

Fig. 3. The proportional survivorship and daily fecundity (nymphs/female/day) of Aphis craccivora at six different constant temperatures. A: 10.0℃, B: 15.0℃, C: 20.0℃, D: 25.0℃, E: 30.0℃, and F: 32.5℃.

Table 1. Development time (days) for Aphis craccivora using Yardlong bean as a food at six different constant temperaturs

OOGCBV_2018_v57n4_261_t0001.png 이미지

Table 2. Lower developmental threshold (℃) and thermal constant (DD) estimated from the linear regression for Aphis craccivora

OOGCBV_2018_v57n4_261_t0002.png 이미지

Table 3. Parameter estimates of nonlinear developmental rate model for Aphis craccivora

OOGCBV_2018_v57n4_261_t0003.png 이미지

Table 4. The longevity (mean ± SE) and fecundity (mean ± SE) of adult female Aphis craccivora at six different constant temperatures

OOGCBV_2018_v57n4_261_t0004.png 이미지

Table 5. Life table parameters of Aphis craccivora at six different constant temperatures

OOGCBV_2018_v57n4_261_t0005.png 이미지

Table 6. Temperature-dependent development data of Aphis craccivora and source references in previous studies

OOGCBV_2018_v57n4_261_t0006.png 이미지

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