[1] 张宇, 王萌, 杨叶, 等. 防治橡胶树白粉病15%乙嘧酚磺酸酯热雾剂的研制[J]. 中国热带农业, 2011(4): 45 − 47. doi:  10.3969/j.issn.1673-0658.2011.04.019
[2]

WU H, PAN Y, DI R, et al. Molecular identification of the powdery mildew fungus infecting rubber trees in China [J]. Forest Pathology, 2019, 49(5): e12519. doi:  10.1111/efp.12519
[3] 郑服丛. 我国橡胶植保科技的现状与展望[J]. 中国热带农业, 2011(4): 37 − 40. doi:  10.3969/j.issn.1673-0658.2011.04.016
[4]

SAIJO Y, LOO E P I, YASUDA S. Pattern recognition receptors and signaling in plant-microbe interactions [J]. The Plant Journal, 2018, 93(4): 592 − 613. doi:  10.1111/tpj.13808
[5]

KUSCH S, PANSTRUGA R. mlo-based resistance: an apparently universal "weapon" to defeat powdery mildew disease [J]. Molecular Plant-Microbe Interactions®, 2017, 30(3): 179 − 189. doi:  10.1094/MPMI-12-16-0255-CR
[6]

EICHMANN R, DECHERT C, KOGEL K H, et al. Transient over-expression of barley BAX inhibitor-1 weakens oxidative defense and MLA12-mediated resistance to Blumeria graminis f. sp. hordei [J]. Molecular Plant Pathology, 2006, 7(6): 543 − 552.
[7]

WEIS C, HÜCKELHOVEN R, EICHMANN R. LIFEGUARD proteins support plant colonization by biotrophic powdery mildew fungi [J]. Journal of Experimental Botany, 2013, 64(12): 3855 − 3867. doi:  10.1093/jxb/ert217
[8]

ROJAS-RIVERA D, ARMISÉN R, COLOMBO A, et al. TMBIM3/GRINA is a novel unfolded protein response (UPR) target gene that controls apoptosis through the modulation of ER calcium homeostasis [J]. Cell Death & Differentiation, 2012, 19(6): 1013 − 1026. doi:  10.1038/cdd.2011.189
[9] 李书缘, 刘承圆, 梁鹏, 等. 橡胶树感白粉病基因LFG1LFG2的克隆及表达分析[J]. 分子植物育种, 2019, 17(3): 754 − 761.
[10]

LI X, LI S P, LIU Y H et al. HbLFG1, a rubber tree (Hevea brasiliensis) lifeguard protein, can facilitate powdery mildew infection by suppressing plant immunity [J]. Phytopathology, 2021, 111(9): 1648 − 1659. doi:  10.1094/PHYTO-08-20-0362-R
[11]

LI X, LIU Y, HE Q, et al. A candidate secreted effector protein of rubber tree powdery mildew fungus contributes to infection by regulating plant ABA biosynthesis [J]. Frontiers in Microbiology, 2020, 11: 591387.
[12]

YAMADA K, YAMAGUCHI K, SHIRAKAWA T, et al. The Arabidopsis CERK1-associated kinase PBL27 connects chitin perception to MAPK activation [J]. The EMBO Journal, 2016, 35(22): 2468 − 2483.
[13]

LIU Y, BASSHAM D C. Degradation of the endoplasmic reticulum by autophagy in plants [J]. Autophagy, 2013, 9(4): 622 − 623. doi:  10.4161/auto.23559
[14]

KAWAI-YAMADA M, JIN L, YOSHINAGA K, et al. Mammalian Bax-induced plant cell death can be down-regulated by overexpression of Arabidopsis Bax inhibitor-1 (AtBI-1) [J]. Proceedings of the National Academy of Sciences of the United States of America, 2001, 98(21): 12295 − 12300. doi:  10.1073/pnas.211423998
[15]

KANZAKI H, SAITOH H, TAKAHASHI Y, et al. NbLRK1, a lectin-like receptor kinase protein of Nicotiana benthamiana, interacts with Phytophthora infestans INF1 elicitin and mediates INF1-induced cell death [J]. Planta, 2008, 228(6): 977 − 987. doi:  10.1007/s00425-008-0797-y
[16]

MACHO A P, ZIPFEL C. Plant PRRs and the activation of innate immune signaling [J]. Molecular Cell, 2014, 54(2): 263 − 272. doi:  10.1016/j.molcel.2014.03.028
[17]

TATEDA C, ZHANG Z, SHRESTHA J, et al. Salicylic acid regulates Arabidopsis microbial pattern receptor kinase levels and signaling [J]. The Plant Cell, 2014, 26: 4171 − 4187. doi:  10.1105/tpc.114.131938
[18]

WANG W, LI X, ZHU M, et al. Arabidopsis GAAP1 to GAAP3 Play redundant role in cell death inhibition by suppressing the upregulation of salicylic acid pathway under endoplasmic reticulum stress [J]. Frontiers in Plant Science, 2019, 10: 1032. doi:  10.3389/fpls.2019.01032
[19]

KAWAI-YAMADA M, OHORI Y, UCHIMIYA H. Dissection of Arabidopsis Bax inhibitor-1 suppressing Bax-, hydrogen peroxide-, and salicylic acid-induced cell death [J]. The Plant Cell, 2004, 16: 21 − 32. doi:  10.1105/tpc.014613
[20]

YANG X, SRIVASTAVA R, HOWELL S H, et al . Activation of autophagy by unfolded proteins during endoplasmic reticulum stress [J]. The Plant Journal, 2016, 85(1): 83 − 95. doi:  10.1111/tpj.13091
[21]

ASAI S, OHTA K, YOSHIOKA H. MAPK signaling regulates nitric oxide and NADPH oxidase-dependent oxidative bursts in Nicotiana benthamiana [J]. The Plant Cell, 2008, 20: 1390 − 1406. doi:  10.1105/tpc.107.055855
[22]

CHAE H J, KIM H R, XU C, et al. BI-1 regulates an apoptosis pathway linked to endoplasmic reticulum stress [J]. Molecular Cell, 2004, 15(3): 355 − 366. doi:  10.1016/j.molcel.2004.06.038
[23]

WATANABE N, LAM E. Bax inhibitor-1, a conserved cell death suppressor, is a key molecular switch downstream from a variety of biotic and abiotic stress signals in plants [J]. International Journal of Molecular Sciences, 2009, 10(7): 3149 − 3167. doi:  10.3390/ijms10073149
[24]

GUO K, WANG W, FAN W,et al. Arabidopsis GAAP1 and GAAP3 modulate the unfolded protein response and the onset of cell death in response to ER stress [J]. Frontiers in Plant Science, 2018(9): 348.