4.7 Review

Recent Advances in Molecular Mechanism and Breeding Utilization of Brown Planthopper Resistance Genes in Rice: An Integrated Review

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Article Biochemistry & Molecular Biology

The Bph45 Gene Confers Resistance against Brown Planthopper in Rice by Reducing the Production of Limonene

Charng-Pei Li et al.

INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES (2023)

Article Multidisciplinary Sciences

A tripartite rheostat controls self-regulated host plant resistance to insects

Jianping Guo et al.

Summary: Plants use certain receptors and proteins to enhance their resistance to insects, but the exact mechanisms underlying this process have been unclear. This study identifies a specific salivary protein produced by brown planthoppers that is detected by a plant immune receptor. Furthermore, it uncovers a mechanism involving selective autophagy that regulates this interaction. This research has significant implications for the development of high-yield, insect-resistant crops.

NATURE (2023)

Article Plant Sciences

A novel transcriptional repressor complex MYB22-TOPLESS-HDAC1 promotes rice resistance to brown planthopper by repressing F3'H expression

Bo Sun et al.

Summary: MYB22 is a transcription factor that represses the expression of the F3'H gene by forming a complex with TOPLESS and HDAC1, thereby enhancing rice resistance to brown planthopper.

NEW PHYTOLOGIST (2023)

Article Agronomy

Functional Bph14 from Rathu Heenati promotes resistance to BPH at the early seedling stage of rice (Oryza sativa L.) as revealed by QTL-seq

Sarinthip Pannak et al.

Summary: In this study, a QTL associated with BPH resistance at the early seedling stage was identified on chromosome 3 using QTL-seq analysis. Bph14 was identified as a potential candidate gene based on gene expression and sequence variation differences compared with the parents. This functional gene of Bph14 from RH is important for BPH resistance at the early seedling stage and could be used in breeding programs to enhance BPH resistance in rice at both early and later growth stages.

THEORETICAL AND APPLIED GENETICS (2023)

Article Plant Sciences

Necessity of rice resistance to planthoppers for OsEXO70H3 regulating SAMSL excretion and lignin deposition in cell walls

Di Wu et al.

Summary: In this study, we identified the interaction between OsEXO70H3 and BPH6, and their roles in cell excretion and planthopper resistance in rice. Our results suggest that OsEXO70H3 may recruit SAMSL and enhance its excretion to the apoplast, contributing to lignin deposition and rice resistance to planthoppers.

NEW PHYTOLOGIST (2022)

Article Agronomy

QTL mapping integrated with BSA-Seq analysis identifies a novel gene conferring resistance to brown planthopper from common wild rice (Oryza rufipogon Griff.)

Xuan Wang et al.

Summary: In this study, a novel gene locus, BPH41, conferring BPH resistance in GXU202, a germplasm of common wild rice, was identified. The gene locus was finely mapped to a 116-kb region on chromosome 4. The markers D01031 and D01045 showed high accuracy in predicting BPH-resistant phenotypes.

EUPHYTICA (2022)

Article Agronomy

Creation of Elite Rice with High-Yield, Superior-Quality and High Resistance to Brown Planthopper Based on Molecular Design

Manman Liu et al.

Summary: In this study, three novel rice lines with high yield, superior quality, and improved resistance to brown planthopper (BPH) were successfully developed using molecular design breeding. These lines exhibited higher yield potential, better grain quality, and higher BPH resistance compared to the parent line 9311.
Article Agronomy

Molecular Mapping of a New Brown Planthopper Resistance Gene Bph43 in Rice (Oryza sativa L.)

JangChol Kim et al.

Summary: This study identified a new brown planthopper resistance gene Bph43 and mapped it to chromosome 11. The characterization of NIL-Bph43-9311 demonstrated that Bph43 confers strong antibiosis and antixenosis effects on the brown planthopper. Comparative transcriptome analysis revealed significant enrichment of genes related to defense response and resistance gene-dependent signaling pathway in BPH-infested NIL-Bph43-9311.

AGRONOMY-BASEL (2022)

Article Biotechnology & Applied Microbiology

Identification of novel candidate of brown planthopper resistance gene Bph44 in rice (Oryza sativa L.)

Iwan Kiswanto et al.

Summary: A novel genetic locus for BPH resistance, named Bph44, was identified and mapped on the long arm of chromosome 4 through analysis of F2:3 populations and genomic analysis.

GENOME (2022)

Article Biochemistry & Molecular Biology

Molecular mapping and transfer of a novel brown planthopper resistance gene bph42 from Oryza rufipogon (Griff.) To cultivated rice (Oryza sativa L.)

Pavneet Kaur et al.

Summary: This study successfully identified and transferred a novel BPH resistance gene, bph42, from wild rice species into elite rice cultivars. Through genetic mapping and QTL analysis, the location of this resistance gene on chromosome 4 was determined, providing important insights for future varietal release. The identified marker associated with bph42 can be efficiently used in marker-assisted selection for breeding BPH-resistant rice cultivars.

MOLECULAR BIOLOGY REPORTS (2022)

Article Multidisciplinary Sciences

Identification of two QTLs, BPH41 and BPH42, and their respective gene candidates for brown planthopper resistance in rice

Han Qi Tan et al.

Summary: The brown planthopper (BPH) is a major insect pest causing damage to rice plants, and finding new BPH resistance genes is crucial for successful rice production. In this study, two dominant BPH resistance QTLs, BPH41 and BPH42, located on chromosome 4 were identified using QTL mapping. The BPH resistance mechanism was found to involve both antibiosis and antixenosis. Candidate genes for BPH41 and BPH42 were identified using RNA-seq data, and differential gene expression analysis suggested their involvement in the rice innate immunity pathway. These newly identified QTLs are now being used to breed BPH resistant rice varieties and hybrids.

SCIENTIFIC REPORTS (2022)

Article Plant Sciences

Molecular and functional analysis of a brown planthopper resistance protein with two nucleotide-binding site domains

Zhizheng Wang et al.

Summary: The study reveals that the BPH9 gene encodes a protein that regulates plant resistance to brown planthopper through associations between its CC, NBS, and LRR domains, with NBS2 acting as a molecular switch. Further experiments showed that the CC domains of BPH9 and susceptible alleles have similar abilities to induce resistance and hypersensitive response, while the LRR domain of BPH9 provides resistance specificity.

JOURNAL OF EXPERIMENTAL BOTANY (2021)

Article Plant Sciences

Virus-induced plant volatiles mediate the olfactory behaviour of its insect vectors

Xuefei Chang et al.

Summary: The study revealed that rice plants emit (E)-beta-caryophyllene and 2-heptanol in response to RDV infection, affecting the olfactory behavior of both non-viruliferous and viruliferous green rice leafhoppers. Suppression of (E)-beta-caryophyllene synthase OsCAS confirmed the important role of (E)-beta-caryophyllene in modulating virus-vector-host plant interactions. These findings demonstrate the role of virus-induced VOCs in influencing the behavior of the GRLH insect vector and suggest potential for novel disease control strategies through manipulation of plant volatile emissions.

PLANT CELL AND ENVIRONMENT (2021)

Article Biochemistry & Molecular Biology

Balancing selection and wild gene pool contribute to resistance in global rice germplasm against planthopper

Cong Zhou et al.

Summary: The study revealed the long-term interactions between rice and brown planthopper, identifying resistance genes and germplasm resources for breeding durable brown planthopper-resistant rice varieties.

JOURNAL OF INTEGRATIVE PLANT BIOLOGY (2021)

Article Biochemistry & Molecular Biology

Bph30 confers resistance to brown planthopper by fortifying sclerenchyma in rice leaf sheaths

Shaojie Shi et al.

Summary: The resistance of rice plants to the brown planthopper is associated with the fortification of the sclerenchyma tissue, which prevents the insects from reaching the phloem for feeding. The discovery of the resistance gene Bph30 and its role in enhancing cellulose and hemicellulose synthesis sheds light on a novel mechanism for controlling planthoppers in rice. This fortified sclerenchyma-mediated resistance mechanism expands our understanding of plant-insect interactions.

MOLECULAR PLANT (2021)

Article Biology

Genetic and molecular understanding of host rice resistance and Nilaparvata lugens adaptation

Xiaohong Zheng et al.

Summary: The variability of BPH populations and diversity of the host rice germplasm serve as an ideal model for exploring the genetic and molecular basis of insect-plant interactions. Nine major BPH resistance genes have been cloned, shedding light on the molecular basis of the rice-BPH interaction. Understanding the interactions between BPH and rice will provide novel insights for sustainable pest control.

CURRENT OPINION IN INSECT SCIENCE (2021)

Article Biology

Lipidomic analyses reveal enhanced lipolysis in planthoppers feeding on resistant host plants

Xiaohong Zheng et al.

Summary: This study compared the lipidomes of brown planthoppers feeding on resistant and susceptible rice plants, revealing that insects feeding on resistant rice can accelerate triglyceride mobilization to provide energy for various physiological processes.

SCIENCE CHINA-LIFE SCIENCES (2021)

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An R2R3 MYB transcription factor confers brown planthopper resistance by regulating the phenylalanine ammonia-lyase pathway in rice

Jun He et al.

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The OsmiR396-OsGRF8-OsF3H-flavonoid pathway mediates resistance to the brown planthopper in rice (Oryza sativa)

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Pesticide-Induced Planthopper Population Resurgence in Rice Cropping Systems

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Overexpression of OsGID1 Enhances the Resistance of Rice to the Brown Planthopper Nilaparvata lugens

Lin Chen et al.

INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES (2018)

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Silencing OsSLR1 enhances the resistance of rice to the brown planthopper Nilaparvata lugens

Jin Zhang et al.

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Allelic diversity in an NLR gene BPH9 enables rice to combat planthopper variation

Yan Zhao et al.

PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA (2016)

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Pyramiding blast, bacterial blight and brown planthopper resistance genes in rice restorer lines

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The Transcription Factor OsWRKY45 Negatively Modulates the Resistance of Rice to the Brown Planthopper Nilaparvata lugens

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A salivary sheath protein essential for the interaction of the brown planthopper with rice plants

Hai-Jian Huang et al.

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