[1] 黄洁, 李开绵, 叶剑秋, 等. 我国的木薯优势区域概述[J]. 广西农业科学, 2008(1): 104 − 108.
[2] 李开绵, 林雄, 黄洁. 国内外木薯科研发展概况[J]. 热带农业科学, 2001(1): 56 − 60. doi:  10.3969/j.issn.1009-2196.2001.01.011
[3] FERRARO V, PICCIRILLO C, TOMLINS K, et al. Cassava (Manihot esculenta Crantz) and yam (Dioscorea spp.) crops and their derived foodstuffs: safety, security and nutritional value[J]. Critical Reviews in Food Science and Nutrition, 2016, 56(16): 2714 − 2727. doi:  10.1080/10408398.2014.922045
[4] PINTO-ZEVALLOS D M, PAREJA M, AMBROGI B G. Current knowledge and future research perspectives on cassava (Manihot esculenta Crantz) chemical defenses: An agroecological view[J]. Phytochemistry, 2016(130): 10 − 21.
[5] ZHANG M, XIE L, YIN Z, et al. Biorefinery approach for cassava-based industrial wastes: Current status and opportunities[J]. Bioresource Technology, 2016(215): 50 − 62.
[6] LÓPEZ C E, BERNAL A J. Cassava bacterial blight: Using genomics for the elucidation and management of an old problem[J]. Tropical Plant Biology, 2012, 5(1): 117 − 126.
[7] ZÁRATE-CHAVES C A, GÓMEZ DE LA CRUZ D, VERDIER V, et al. Cassava diseases caused by Xanthomonas phaseoli pv manihotis and Xanthomonas cassavae[J]. Molecular Plant Pathology, 2021, 22(12): 1520 − 1537.
[8] BRICKER T M, ROOSE J L, ZHANG P, et al. The PsbP family of proteins[J]. Photosynthesis Research, 2013, 116(2): 235 − 250.
[9] IFUKU K. The PsbP and PsbQ family proteins in the photosynthetic machinery of chloroplasts[J]. Plant Physiology and Biochemistry, 2014, 81: 108 − 114. doi:  10.1016/j.plaphy.2014.01.001
[10] BRICKER T M, FRANKEL L K. Auxiliary functions of the PsbO, PsbP and PsbQ proteins of higher plant Photosystem Ⅱ: A critical analysis[J]. Journal of Photochemistry and Photobiology B-biology, 2011, 104(1/2): 165 − 178.
[11] IFUKU K, ISHIHARA S, SHIMAMOTO R, et al. Structure, function, and evolution of the PsbP protein family in higher plants[J]. Photosynthesis Research, 2008, 98(1/2/3): 427 − 437.
[12] IFUKU K, NAKATSU T, KATO H, et al. Crystallization and preliminary crystallographic studies on the extrinsic 23 kDa protein in the oxygen-evolving complex of photosystem Ⅱ[J]. Acta Crystallographica Section D, 2003, 59((Pt8)): 1462 − 1463. doi:  10.1107/S0907444903011004
[13] IDO K, IFUKU K, YAMAMOTO Y, et al. Knockdown of the PsbP protein does not prevent assembly of the dimeric PSⅡ core complex but impairs accumulation of photosystem Ⅱ supercomplexes in tobacco[J]. Biochimica et Biophysica Acta (BBA) - Bioenergetics, 2009, 1787(7): 873 − 881. doi:  10.1016/j.bbabio.2009.03.004
[14] IFUKU K, YAMAMOTO Y, ONO T A, et al. PsbP protein, but not PsbQ protein, is essential for the regulation and stabilization of photosystem Ⅱ in higher plants[J]. Plant Physiology, 2005, 139(3): 1175 − 1184. doi:  10.1104/pp.105.068643
[15] YI X, HARGETT S R, LIU H, et al. The PsbP protein is required for photosystem Ⅱ complex assembly/stability and photoautotrophy in Arabidopsis thaliana[J]. Journal of Biological Chemistry, 2007, 282(34): 24833 − 24841. doi:  10.1074/jbc.M705011200
[16] CHE Y, KUSAMA S, MATSUI S, et al. Arabidopsis PsbP-like protein 1 facilitates the assembly of the photosystem Ⅱ super complexes and optimizes plant fitness under fluctuating light[J]. Plant and Cell Physiology, 2020, 61(6): 1168 − 1180.
[17] ISHIHARA S, TAKABAYASHI A, IDO K, et al. Distinct functions for the two PsbP-like proteins PPL1 and PPL2 in the chloroplast thylakoid lumen of Arabidopsis[J]. Plant Physiology, 2007, 145(3): 668 − 679. doi:  10.1104/pp.107.105866
[18] LIU J, YANG H, LU Q, et al. PsbP-domain protein1, a nuclear-encoded thylakoid lumenal protein, is essential for photosystem I assembly in Arabidopsis[J]. The Plant Cell, 2012, 24(12): 4992 − 5006.
[19] ROOSE J L, FRANKEL L K, BRICKER T M. The PsbP domain protein 1 functions in the assembly of lumenal domains in photosystem[J]. The Journal of Biological Chemistry, 2014, 289(34): 23776 − 23785. doi:  10.1074/jbc.M114.589085
[20] ROOSE J L, FRANKEL L K, BRICKER T M. Developmental defects in mutants of the PsbP domain protein 5 in Arabidopsis thaliana[J]. The Public Library of Science, 2011, 6(12): e28624.
[21] LIU R, CHEN T, YIN X, et al. A Plasmopara viticola RXLR effector targets a chloroplast protein PsbP to inhibit ROS production in grapevine[J]. The Plant Journal, 2021, 106(6): 1557 − 1570. doi:  10.1111/tpj.15252