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Xiangbing Meng

Institute of Automation · US
Area of research
Plant Science · Molecular Biology
Research interest
Research interests include Plant Molecular Biology Research, CRISPR and Genetic Engineering, Plant Parasitism and Resistance, and Plant and animal studies.
h-index
41
citations
9,801
works
67
NIH funding
primary concept
Biology
email

Recent publications

A mortise-tenon joint system facilitates precise targeted DNA insertion and replacement in rice.
2026cited by 0position: contributordoi
Root microbiota regulates tiller number in rice.
2025cited by 25position: contributordoi
OsWUS-driven synthetic apomixis in hybrid rice.
2025cited by 16position: contributordoi
Cas9-PE: a robust multiplex gene editing tool for simultaneous precise editing and site-specific random mutation in rice.
2025cited by 9position: contributordoi
Creation of high-resistant starch rice through systematic editing of amylopectin biosynthetic genes in rs4.
2025cited by 6position: contributordoi
LAZY5 acts in an LAZY1‐independent pathway to regulate rice tiller angle
Plant Biotechnology Journal 2025cited by 3position: middledoi
Chemical Glycoproteomic Profiling in Rice Seedlings Reveals N-glycosylation in the ERAD-L Machinery
Molecular & Cellular Proteomics 2025cited by 2position: contributordoi
Shaping future sugarcane: Ideal plant architecture and breeding strategies.
2025cited by 0position: contributordoi
LAZY5 acts in an LAZY1-independent pathway to regulate rice tiller angle.
2025cited by 0position: contributordoi
Natural Variation of a Specific NLR Gene RGA4L Confers Strong Chilling Tolerance in Rice.
2025cited by 0position: contributordoi
Peptide REF1 is a local wound signal promoting plant regeneration.
2024cited by 81position: contributordoi
Regulatory mechanisms of strigolactone perception in rice
Cell 2024cited by 57position: contributordoi
LAZY4 acts additively with the starch–statolith-dependent gravity-sensing pathway to regulate shoot gravitropism and tiller angle in rice
Plant Communications 2024cited by 15position: contributordoi
Genome editing of 3' UTR-embedded inhibitory region enables generation of gene knock-up alleles in plants.
2024cited by 12position: contributordoi
Shaping rice Green Revolution traits by engineering ATG immediate upstream 5'-UTR sequences of OsSBI and OsHTD1.
2024cited by 8position: contributordoi
Generation of OsGRF4 and OsSNAC1 alleles for improving rice agronomic traits by CRISPR/Cas9-mediated manipulation of transposable elements.
2024cited by 5position: contributordoi
Improving Seed Shattering Resistance in Wild <i>O. alta</i> Rice with Mesoporous Silica Nanoparticle Delivery Systems.
2024cited by 5position: contributordoi
Low phosphorus promotes NSP1–NSP2 heterodimerization to enhance strigolactone biosynthesis and regulate shoot and root architecture in rice
Molecular Plant 2023cited by 86position: middledoi
Low phosphorus promotes NSP1-NSP2 heterodimerization to enhance strigolactone biosynthesis and regulate shoot and root architecture in rice.
2023cited by 47position: contributordoi
OsFTL12, a member of FT-like family, modulates the heading date and plant architecture by florigen repression complex in rice.
2023cited by 23position: contributordoi
Loss of function of <i>SSIIIa</i> and <i>SSIIIb</i> coordinately confers high RS content in cooked rice.
2023cited by 17position: contributordoi
Targeting a gene regulatory element enhances rice grain yield by decoupling panicle number and size.
2022cited by 226position: contributordoi
Chilling-induced phosphorylation of IPA1 by OsSAPK6 activates chilling tolerance responses in rice.
2022cited by 54position: contributordoi
OsMPK4 promotes phosphorylation and degradation of IPA1 in response to salt stress to confer salt tolerance in rice.
2022cited by 37position: contributordoi
Improving the efficiency of prime editing with epegRNAs and high-temperature treatment in rice.
2022cited by 27position: contributordoi
An engineered platform for reconstituting functional multisubunit SCF E3 ligase in vitro.
2022cited by 11position: contributordoi
Protocol for genome editing in wild allotetraploid rice <i>Oryza alta</i>.
2022cited by 3position: contributordoi
A route to de novo domestication of wild allotetraploid rice
Cell 2021cited by 477position: middledoi
A route to de novo domestication of wild allotetraploid rice.
2021cited by 270position: contributordoi
Generating broad-spectrum tolerance to ALS-inhibiting herbicides in rice by base editing.
2021cited by 46position: contributordoi

Grants

No grants ingested yet.

Frequent collaborators

Hong Yu · Sanya University27 papers (2019–2025)Jiayang Li · Shenzhen Technology University24 papers (2014–2025) · 17 papers (2019–2025)Yonghong Wang · Central South University of Forestry and Technology11 papers (2014–2025)Kejian Wang · Hebei Agricultural University7 papers (2019–2025) · 6 papers (2020–2025) · 5 papers (2020–2024)Yan Liang · Peking University5 papers (2019–2025)Guosheng Xiong · Nanjing Agricultural University4 papers (2017–2023) · 3 papers (2021–2025)Caixia Gao · Inner Mongolia University3 papers (2020–2021)Bing Wang · Iowa State University2 papers (2020–2023) · 2 papers (2019–2020)Qian Qian · Qiannan Normal College For Nationalities2 papers (2020–2020)Guifu Liu · Institute of Genetics and Developmental Biology2 papers (2017–2019)Chun Wang · Quanzhou Normal University2 papers (2022–2025) · 2 papers (2022–2023)Bing Wang · United States Department of Energy2 papers (2020–2024)Anqi Wang · Chinese Academy of Sciences2 papers (2023–2025)Zefu Lu · University of Georgia2 papers (2017–2023)