Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (12): 2637-2655.doi: 10.3864/j.issn.0578-1752.2026.12.008

• PLANT PROTECTION • Previous Articles     Next Articles

Control of Bemisia tabaci on Tomato by the Combined Application of Beauveria bassiana and Food Attractants

WANG MengHan1(), WANG DengJie2, LIANG XingHui3, WANG EnDong1, ZHANG Bo1, WANG HaiHong1()   

  1. 1 Institute of Plant Protection, Chinese Academy of Agricultural Sciences/State Key Laboratory for Biology of Plant Diseases and Insect Pests, Beijing 100193
    2 Mianyang Academy of Agricultural Sciences, Mianyang 621000, Sichuan
    3 Beijing Ecoman Biotech Co., Ltd, Beijing 100089
  • Received:2026-02-13 Accepted:2026-04-14 Online:2026-06-16 Published:2026-06-16
  • Contact: WANG HaiHong

Abstract:

【Objective】The objective of this study was to systematically evaluate the pathogenicity of Beauveria bassiana to Bemisia tabaci, the attraction rate of food-based attractants to B. tabaci, and the synergistic efficacy of their combination against B. tabaci under both laboratory and field conditions, and to screen the highly pathogenic B. bassiana strains and optimized attractant formulations for effective whitefly control.【Method】Under controlled laboratory conditions, the pathogenicity of multiple B. bassiana strains against nymphal and adult stages of B. tabaci was assessed using leaf-dip and contact bioassays, respectively. Conidial production per unit area was quantified microscopically using a hemocytometer. Behavioral responses of B. tabaci to plant-derived volatile organic compounds (VOCs) were evaluated in a Y-tube olfactometer assay. An optimized food-based attractant formulation was developed through systematic screening of active components, empirical optimization of component ratios and concentrations, evaluation of solvent compatibility, and assessment of slow-release carrier efficacy. A prototype dual-function device—integrating the selected B. bassiana strain with the optimized attractant—was designed for field deployment. The influence of device hanging height and inter-unit spacing on whitefly attractive effect was rigorously tested under semi-field and field conditions. Finally, conidial acquisition by B. tabaci individuals and subsequent population-level impacts were quantified via standardized cage experiments and longitudinal field monitoring.【Result】At a concentration of 1×108 conidia/mL, strain XJWLMQ-1 caused corrected mortalities of 93.16% and 79.17% against second-instar nymphs and adults of B. tabaci, respectively, with LT50 values of 3.78 and 7.12 d. The conidial production of this strain reached 3.74×108 conidia/cm2 on sporulation medium. A compound attractant consisting of (Z)-3-hexenal, linalool, and eugenol at a ratio of 1﹕2﹕1 showed the highest attraction rate (90.0%). A mixed solvent of liquid paraffin and n-hexane combined with a porous silica gel rod as a slow-release carrier exhibited good persistence, maintaining an attraction rate of 60.0% after 84 d. Devices suspended at the top of tomato plants attracted significantly more whiteflies than those placed at the middle of plants or 20 cm above the canopy. Cage experiments showed that B. tabaci could acquire and carry (1.50-4.34) ×104 conidia per adult through contact with the combined application device. Conidial loads carried by adults increased with exposure time and reached a peak of 1.40×105 conidia per adult after 14 d. Two years of field trials demonstrated that the peak densities of B. tabaci adult in the treatment plots were 16.40 and 15.60 individuals per leaf, representing reductions of 36.3% and 37.6%, respectively, compared with the control (P<0.05).【Conclusion】A highly pathogenic B. bassiana strain XJWLMQ-1 against both nymphs and adults of B. tabaci was screened, and an efficient food attractant formulation consisting of (Z)-3-hexenal, linalool, and eugenol at a ratio of 1﹕2﹕1 was developed. The combined application of B. bassiana and the attractant effectively suppressed B. tabaci populations and showed strong potential for sustainable field application.

Key words: Beauveria bassiana, food attractant, Bemisia tabaci, combined control

Table 1

Source information of the B. bassiana strains used in this study"

菌株编号Strain ID 寄主来源Host source 采集地Collection location
LNTL-1 亚洲玉米螟Ostrinia nubilalis 辽宁铁岭Tieling, Liaoning
LNTL-3 亚洲玉米螟Ostrinia nubilalis 辽宁铁岭Tieling, Liaoning
LNTL-5 亚洲玉米螟Ostrinia nubilalis 辽宁铁岭Tieling, Liaoning
JXNC-4 褐飞虱Nilaparvata lugens 江西南昌Nanchang, Jiangxi
JXNC-5 褐飞虱Nilaparvata lugens 江西南昌Nanchang, Jiangxi
JXNC-11 褐飞虱Nilaparvata lugens 江西南昌Nanchang, Jiangxi
JXNC-12 褐飞虱Nilaparvata lugens 江西南昌Nanchang, Jiangxi
HNLY-46 温室白粉虱Trialeurodes vaporariorum 河南洛阳Luoyang, Henan
HNLY-47 温室白粉虱Trialeurodes vaporariorum 河南洛阳Luoyang, Henan
JLGZL-1 亚洲玉米螟Ostrinia nubilalis 吉林公主岭Gongzhuling, Jilin
JLGZL-2 亚洲玉米螟Ostrinia nubilalis 吉林公主岭Gongzhuling, Jilin
JLGZL-3 亚洲玉米螟Ostrinia nubilalis 吉林公主岭Gongzhuling, Jilin
JLGZL-9 亚洲玉米螟Ostrinia nubilalis 吉林公主岭Gongzhuling, Jilin
SDDZ-13 亚洲玉米螟Ostrinia nubilalis 山东德州Dezhou, Shandong
SDDZ-14 亚洲玉米螟Ostrinia nubilalis 山东德州Dezhou, Shandong
SDDZ-20 亚洲玉米螟Ostrinia nubilalis 山东德州Dezhou, Shandong
SDDZ-21 亚洲玉米螟Ostrinia nubilalis 山东德州Dezhou, Shandong
XJWLMQ-1 亚洲玉米螟Ostrinia nubilalis 新疆乌鲁木齐Urumqi, Xinjiang
XJWLMQ-33 亚洲玉米螟Ostrinia nubilalis 新疆乌鲁木齐Urumqi, Xinjiang
XJWLMQ-36 亚洲玉米螟Ostrinia nubilalis 新疆乌鲁木齐Urumqi, Xinjiang

Fig. 1

Schematic diagram of a combined food attractant for B. bassiana"

Table 2

Treatments with different ratios of plant-derived volatile blends"

处理
Treatment
顺-3-己烯醛﹕芳樟醇﹕丁香酚
(Z)-3-hexenal﹕Linalool﹕Eugenol
处理
Treatment
顺-3-己烯醛﹕芳樟醇﹕丁香酚
(Z)-3-hexenal﹕Linalool﹕Eugenol
B-1 1﹕1﹕1 B-6 3﹕1﹕1
B-2 1﹕2﹕1 B-7 1﹕3﹕3
B-3 1﹕1﹕3 B-8 2﹕1﹕1
B-4 2﹕2﹕1 B-9 1﹕2﹕3
B-5 1﹕1﹕2

Table 3

Treatments with different combinations of food attractants"

处理
Treatment
形式
Form
食诱剂成分
Ingredient of food attractants
成分配比
Proportion of ingredients
处理1
Treatment 1
Y-1+4+5加粘虫板
Y-1+4+5 with yellow sticky trap
顺-3-己烯醛+芳樟醇+丁香酚
(Z)-3-hexenal+linalool+eugenol
1﹕2﹕1
处理2
Treatment 2
Y-1+5加粘虫板
Y-1+5 with yellow sticky trap
顺-3-己烯醛+丁香酚
(Z)-3-hexenal+eugenol
1﹕1
处理3
Treatment 3
Y-4+5加粘虫板
Y-4+5 with yellow sticky trap
芳樟醇+丁香酚
Linalool+eugenol
1﹕1
处理4
Treatment 4
Y-1+2+3+5加粘虫板
Y-1+2+3+5 with yellow sticky trap
顺-3-己烯醛+顺-3-己烯乙酸酯+对乙基苯乙酮+丁香酚
(Z)-3-hexenal+(Z)-hexenyl acetate+4-ethylacetophenone+eugenol
1﹕1﹕1﹕1
处理5
Treatment 5
Y-1+2+4加粘虫板
Y-1+2+4 with yellow sticky trap
顺-3-己烯醛+顺-3-己烯乙酸酯+芳樟醇
(Z)-3-hexenal+(Z)-hexenyl acetate+linalool
1﹕1﹕1
对照Control 粘虫板Yellow sticky trap

Fig. 2

Pathogenicity of different B. bassiana strains to nymphs and adults of B. tabaci and their conidial production"

Fig. 3

Attractive effect of plant volatile components and their combinations on B. tabaci"

Fig. 4

Effects of different sustained-release carriers on the attractive effect of plant-derived volatile blends to B. tabaci"

Fig. 5

Attractive effect of different food attractant combinations to B. tabaci Different lowercase letters indicate significant cumulative differences among treatments (one-way ANOVA followed by Duncan’s multiple range test, P<0.05)"

Table 4

Attractive effect of attractant placement to B. tabaci"

处理
Treatment
投放位置
Position
1 d诱集数量
Number of traps (1 d)
3 d诱集数量
Number of traps (3 d)
7 d诱集数量
Number of traps (7 d)
处理1
Treatment 1
植株中部Middle of plant 32.98±2.69b 131.28±6.74b 418.36±17.62b
番茄顶端Top of tomato plant 42.98±2.78a 165.33±6.95a 438.50±17.51a
番茄植株顶端20 cm处
20 cm above the top of tomato plant
25.33±3.76c 111.62±7.95c 368.45±11.75c
处理2
Treatment 2
植株中部Middle of plant 28.67±1.82b 114.33±5.12b 311.51±12.43b
番茄顶端Top of tomato plant 36.67±2.63a 127.33±4.92a 323.18±11.21a
番茄植株顶端20 cm处
20 cm above the top of tomato plant
23.67±1.36c 105.33±3.46c 300.14±10.90c
处理3
Treatment 3
植株中部Middle of plant 26.87±2.42b 103.21±4.81b 305.62±12.52b
番茄顶端Top of tomato plant 32.24±2.87a 119.43±4.21a 313.24±13.25a
番茄植株顶端20 cm处
20 cm above the top of tomato plant
18.67±2.76c 98.23±5.46c 280.61±11.90c

Table 5

Attractive effect of attractant density to B. tabaci"

处理
Treatment
投放距离
Distance
1 d诱集数量
Number of traps (1 d)
3 d诱集数量
Number of traps (3 d)
7 d诱集数量
Number of traps (7 d)
处理1
Treatment 1
间隔10 m 10 m interval 54.63±2.81a 172.33±6.75a 435.00±16.62a
间隔7 m 7 m interval 52.54±2.68a 170.35±5.68a 419.48±17.68a
间隔4 m 4 m interval 51.56±2.16a 164.48±6.54a 421.36±17.59a
处理2
Treatment 2
间隔10 m 10 m interval 35.17±1.63a 117.23±5.25a 333.00±15.23a
间隔7 m 7 m interval 33.67±1.16a 121.35±3.67a 335.00±15.57a
间隔4 m 4 m interval 35.62±1.32a 114.33±4.54a 321.32±12.32a

Fig. 6

Attraction rate of the device and conidial load carried by B. tabaci"

Fig. 7

Conidial load carried by B. tabaci in field trials"

Fig. 8

Field trials of B. bassiana combined with food attractants against B. tabaci in 2023"

Fig. 9

Field trials of B. bassiana combined with food attractants against B. tabaci in 2024"

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