| [1] |
Anusha S, Indra N, Kannan R, Geetha P, Rahale CS. 2023. Morphological and molecular characterization of major postharvest diseases of mango. |
| [2] |
Arauz LF. 2000. Mango anthracnose: economic impact and current options for integrated management. |
| [3] |
Das T, Prasad A, Dey A. 2023. Mycoviral gene-incorporating phytopathogenic fungi: a biocontrol agent. |
| [4] |
Terao D, de Lima Nechet K, Frighetto RTS, de Almeida Anjos VD, Benato EA, et al. 2018. Physical postharvest treatments in the control of stem-end rot of mango. |
| [5] |
Xu X, Lei H, Ma X, Lai T, Song H, et al. 2017. Antifungal activity of 1-Methylcyclopropene (1-MCP) against anthracnose (Colletotrichum gloeosporioides) in postharvest mango fruit and its possible mechanisms of action. |
| [6] |
Ren Y, Xue Y, Tian D, Zhang L, Xiao G, et al. 2020. Improvement of postharvest anthracnose resistance in mango fruit by nitric oxide and the possible mechanisms involved. |
| [7] |
Song Y, Hu C, Xue Y, Gu J, He J, et al. 2022. 24-epibrassinolide enhances mango resistance to Colletotrichum gloeosporioides via activating multiple defense response. |
| [8] |
Droby S, Wisniewski M, Macarisin D, Wilson C. 2009. Twenty years of postharvest biocontrol research: is it time for a new paradigm? |
| [9] |
Droby S, Wisniewski M. 2018. The fruit microbiome: a new frontier for postharvest biocontrol and postharvest biology. |
| [10] |
Prasad K, Sharma RR, Asrey R, Singh D, Lal MK, et al. 2024. Mitigating postharvest quantitative and qualitative losses in mango fruits through the application of biocontrol agents: an in-vivo and in-vitro assessment. |
| [11] |
Nujthet Y, Kaewkrajay C, Kijjoa A, Dethoup T. 2024. Biocontrol efficacy of antagonists Trichoderma and Bacillus against post-harvest diseases in mangos. |
| [12] |
Sahu PK, Singh S, Gupta AR, Gupta A, Singh UB, et al. 2020. Endophytic bacilli from medicinal-aromatic perennial holy basil (Ocimum tenuiflorum L.) modulate plant growth promotion and induced systemic resistance against Rhizoctonia solani in rice (Oryza sativa L.). |
| [13] |
Akram W, Ahmad A, Ahmad Yasin N, Anjum T, Ali B, et al. 2021. Mechanical strengthening and metabolic re-modulations are involved in protection against Fusarium wilt of tomato by B. subtilis IAGS174. |
| [14] |
Jing M, Huang B, Li W, Zeng J, Shao Y. 2021. Biocontrol of Cladosporium cladosporioides of mango fruit with Bacillus atrophaeus TE7 and effects on storage quality. |
| [15] |
Li W, Chen H, Cheng J, Zhang M, Xu Y, et al. 2024. Improving resistance of mango to Colletotrichum gloeosporioides by activating reactive oxygen species and phenylpropane metabolism of Bacillus amyloliquefaciens GSBa-1. |
| [16] |
Xu J, Zheng Y, Peng D, Shao Y, Li R, et al. 2024. Bacillus siamensis N-1 improves fruit quality and disease resistance by regulating ROS homeostasis and defense enzyme activities in pitaya. |
| [17] |
Wang X, Muzammal Aslam M, Cheng N, Jia W, Li R, et al. 2024. LcVHA2 and LcVHA3 positively modulate energy metabolism and reduce pericarp browning in litchi fruit after application of Bacillus siamensis. |
| [18] |
Zhang X, Zhou Y, Dhanasekaran S, Wang J, Zhou H, et al. 2022. Insights into the defense mechanisms involved in the induction of resistance against black spot of cherry tomatoes by Pichia caribbica. |
| [19] |
Torres MA, Jones JD, Dangl JL. 2006. Reactive oxygen species signaling in response to pathogens. |
| [20] |
Rossi FR, Krapp AR, Bisaro F, Maiale SJ, Pieckenstain FL, et al. 2017. Reactive oxygen species generated in chloroplasts contribute to tobacco leaf infection by the necrotrophic fungus Botrytis cinerea. |
| [21] |
Liu Z, Liao W. 2025. ROS-induced oxidative post-translational modifications in plants: another switch for ROS signaling. |
| [22] |
Peláez-Vico MÁ, Fichman Y, Zandalinas SI, Van Breusegem F, Karpiński SM, et al. 2022. ROS and redox regulation of cell-to-cell and systemic signaling in plants during stress. |
| [23] |
Vaghela B, Vashi R, Rajput K, Joshi R. 2022. Plant chitinases and their role in plant defense: a comprehensive review. |
| [24] |
Huang T, Li Y, Luo J, Wang J, Cai Z, et al. 2023. Hydrogen sulfide enhances resistance to Penicillium italicum by activating phenylpropanoid metabolism in postharvest navel orange fruit. |
| [25] |
Chen Y, Gou Y, Huang T, Chen Y, You C, et al. 2024. Characterization of the Chitinase gene family in Saccharum reveals the disease resistance mechanism of ScChiVII1. |
| [26] |
You W, Ge C, Jiang Z, Chen M, Li W, et al. 2021. Screening of a broad- spectrum antagonist-Bacillus siamensis, and its possible mechanisms to control postharvest disease in tropical fruits. |
| [27] |
Martel AB, Qaderi MM. 2019. Unravelling the effects of blue light on aerobic methane emissions from canola. |
| [28] |
Yu K, Xu J, Zhou L, Zou L, Liu W. 2021. Effect of chitosan coatings with cinnamon essential oil on postharvest quality of mangoes. |
| [29] |
Huang M, Xu Q, Deng XX. 2014. L-Ascorbic acid metabolism during fruit development in an ascorbate-rich fruit crop chestnut rose (Rosa roxburghii Tratt). |
| [30] |
Yang W, Guo M, Zhang W, Cheng S, Chen G. 2023. Methyl salicylate and methyl jasmonate induce resistance to Alternaria tenuissima by regulating the phenylpropane metabolism pathway of winter jujube. |
| [31] |
Tang J, Chen H, Lin H, Hung YC, Xie H, et al. 2021. Acidic electrolyzed water treatment delayed fruit disease development of harvested longans through inducing the disease resistance and maintaining the ROS metabolism systems. |
| [32] |
Wang H, Yuan J, Wu Y, Wen Y, Lin Y, et al. 2025. Bacillus amyloliquefaciens LY-1 culture broth enhances the storage properties of fresh litchi through acting on ROS metabolism. |
| [33] |
Cao JK, Jiang WB, Zhao YM. 2011. Physiological and biochemical experimental techniques for postharvest fruits and vegetables. In Guidance on postharvest physiological and biochemical experiments of fruits and vegetables. Beijing: China Light Industry Press. pp. 101–132 (in Chinese with English abstract) |
| [34] |
Sun J, Fan Z, Chen Y, Jiang Y, Lin M, et al. 2023. The effect of ε-poly-L-lysine treatment on molecular, physiological and biochemical indicators related to resistance in longan fruit infected by phomopsis Longanae Chi. |
| [35] |
Niu XM, Hu YX, Wang X, Li R, Li W, et al. 2025. Glycine betaine and MiWRKY53 enhance antioxidant capacity and disease resistance against Colletotrichum gloeosporioides in mango fruit. |
| [36] |
Lennicke C, Cochemé HM. 2021. Redox metabolism: ROS as specific molecular regulators of cell signaling and function. |
| [37] |
Chen Y, Lin H, Shi J, Zhang S, Lin Y, et al. 2015. Effects of a feasible 1-methylcyclopropene postharvest treatment on senescence and quality maintenance of harvested Huanghua pears during storage at ambient temperature. |
| [38] |
Hrebid AK, Hatamnia AA, Mohammadi M, Ranjbar ME. 2025. Exogenous salicylic acid induces endogenous SA biosynthesis, enhances osmolyte accumulation, antioxidant defense, and free radical scavenging to alleviate chilling injury in red bell pepper fruit. |
| [39] |
Liu J, Qin D, Huang W, Wang X, Li Y, et al. 2023. Biocontrol ability and action mechanism of Bacillus amyloliquefaciens Baf1 against Fusarium incarnatum causing fruit rot in postharvest muskmelon (cv. Yugu) fruit. |
| [40] |
Ding X, Liu S, Duan X, Pan X, Dong B. 2023. MAPK cascade and ROS metabolism are involved in GABA-induced disease resistance in red pitaya fruit. |
| [41] |
Zhou JM, Zhang Y. 2020. Plant Immunity: Danger Perception and Signaling. |
| [42] |
Meng X, Fang J, Fu M, Jiao W, Ren P, et al. 2023. The role of 1-methylcyclopropylene (1-MCP) and salicylic acid (SA) in induced resistance of postharvest fruits. |
| [43] |
Sun C, Fu D, Jin L, Chen M, Zheng X, et al. 2018. Chitin isolated from yeast cell wall induces the resistance of tomato fruit to Botrytis cinerea. |
| [44] |
Prusky D, Romanazzi G. 2023. Induced resistance in fruit and vegetables: a host physiological response limiting postharvest disease development. |
| [45] |
Li XM, Chen X, Zhao DG. 2024. Overexpression of the Eucommia ulmoides chitinase EuCHIT73.88 gene improves tobacco disease resistance. |
| [46] |
Taif S, Zhao Q, Pu L, Li X, Liu D, et al. 2020. A β-1,3-glucanase gene from Panax notoginseng confers resistance in tobacco to Fusarium solani. |
| [47] |
Gęgotek A, Skrzydlewska E. 2022. Antioxidative and Anti-Inflammatory Activity of Ascorbic Acid. |
| [48] |
Shi J, Guo S, Li T, Yan Z, Wang L, et al. 2025. The molecular mechanism of chitosan-based OEO nanoemulsion edible film in controlling Alternaria alternata and in application for apricot preservation. |
| [49] |
Xiang Y, Zhu L, Liu J, Liu G, Meng L, et al. 2025. Melatonin induces resistance against Colletotrichum gloeosporioides in mango fruit via regulation of defense-related genes by MiWRKY45 transcription Factor. |