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Profil bibliographique

Fengkai Wu

Informations fournies par OpenAlex. Research Africa ne déduit ni nationalité, ni poste, ni coordonnées personnelles.

32Publications signalées
1048Citations signalées
1Affiliations récentes

Les institutions déclarées

Les domaines associés

Plant Molecular Biology ResearchPlant nutrient uptake and metabolismPlant Stress Responses and ToleranceGenetic Mapping and Diversity in Plants and AnimalsCrop Yield and Soil Fertility

Les publications récentes

Accès ouvert 2025 article OpenAlex

One-pot conversion of lignocellulosic biomass into two high-value nanospheres with high conversion yields

Shaobo Zhang, Mengyuan Pan, Guichao Zhang, Rui Huang et autres

Maximizing the utilization of lignocellulosic biomass is challenging. Lignin nanospheres (LNSs) and cellulose nanospheres (CNSs) have been reported as high-value biomass-derived materials. Here, we developed a synchronous conversion of lignocellulose into LNSs (particle size: 423.5 ± 66.9 nm) and CNSs (particle size: …

cn (code pays fourni par la source)

2 citations Industrial Crops and Products
Accès ouvert 2023 article OpenAlex

Identification and Functional Analysis of Drought-Responsive Long Noncoding RNAs in Maize Roots

Xin Tang, Qimeng Li, Xiaoju Feng, Bo Yang et autres

Long noncoding RNAs (lncRNAs) are transcripts with lengths of more than 200 nt and limited protein-coding potential. They were found to play important roles in plant stress responses. In this study, the maize drought-tolerant inbred line AC7643 and drought-sensitive inbred line AC7729/TZSRW, …

cn (code pays fourni par la source)

13 citations International Journal of Molecular Sciences
Accès ouvert 2023 preprint OpenAlex

Profiling the domestication hotspots for ear traits in two maize populations with teosinte gene introgression

Xuanjun Feng, Huarui Guan, Ying Wen, Hanmei Zhou et autres

Abstract Throughout the history of maize cultivation, ear-related traits have been domesticated. However, little is known about the domesticated genes involved in shaping the ear traits from those of the wild progenitor, teosinte, to those exhibited by modern maize. In this study, …

cn (code pays fourni par la source)

0 citations Research Square
2022 article OpenAlex

ZmLBD5 , a class‐II LBD gene, negatively regulates drought tolerance by impairing abscisic acid synthesis

Xuanjun Feng, Jing Xiong, Weixiao Zhang, Huarui Guan et autres

SUMMARY Lateral organ boundaries domain (LBD) proteins are plant‐specific transcription factors. Class‐I LBD genes have been widely demonstrated to play pivotal roles in organ development; however, knowledge on class‐II genes remains limited. Here, we report that ZmLBD5 , a class‐II LBD gene, …

cn (code pays fourni par la source)

58 citations The Plant Journal
Accès ouvert 2022 article OpenAlex

Identification of Fusarium verticillioides Resistance Alleles in Three Maize Populations With Teosinte Gene Introgression

Xuanjun Feng, Hao Xiong, Dan Zheng, Xiaobing Xin et autres

Fusarium ear rot (FER) is a common fungal disease in maize (Zea mays L.) caused by Fusarium verticillioides. Resistant germplasm resources for FER are rare in cultivated maize; however, teosintes (Z. mays ssp. parviglumis and Z. mays ssp. diploperennis), which are wild-type …

cn (code pays fourni par la source)

17 citations Frontiers in Plant Science
Accès ouvert 2022 article OpenAlex

ABA ‐inducible DEEPER ROOTING 1 improves adaptation of maize to water deficiency

Xuanjun Feng, Jia Li, Y.F. Cai, Huarui Guan et autres

Summary Root architecture remodelling is critical for forage moisture in water‐limited soil. DEEPER ROOTING 1 ( DRO1 ) in Oryza , Arabidopsis , and Prunus has been reported to improve drought avoidance by promoting roots to grow downward and acquire water from …

cn (code pays fourni par la source)

84 citations Plant Biotechnology Journal
Accès ouvert 2022 article OpenAlex

ZmLBD5 Increases Drought Sensitivity by Suppressing ROS Accumulation in Arabidopsis

Jing Xiong, Weixiao Zhang, Dan Zheng, Hao Xiong et autres

Drought stress is known to significantly limit crop growth and productivity. Lateral organ boundary domain (LBD) transcription factors—particularly class-I members—play essential roles in plant development and biotic stress. However, little information is available on class-II LBD genes related to abiotic stress in …

cn (code pays fourni par la source)

47 citations Plants

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