Jiamei Li
Affiliation confirmed via AI analysis of OpenAlex, ORCID, and web sources.
professor and head of the Entomology and Plant Patholo
Also affiliated: Henan Agricultural University (2026)
Entomology & Plant Pathology
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Jiamei Li's research focuses on understanding plant resistance to nematodes, particularly in *Arabidopsis thaliana*. Her recent work includes investigating the overexpression of the *AtPROPEP6* gene to enhance resistance against the Southern root-knot nematode, *Meloidogyne incognita*. Li also explores optimizing conditions for the ectopic gene expression and delivery of *Bacillus subtilis* via seed treatment. Her scholarship extends to the study of plastome conservation and adaptive evolution in medicinal plants, as seen in her work on *Aralia elata*. Li collaborates with researchers at the University of Arkansas at Fayetteville, including Payal Sanadhya and Fiona L. Goggin, with whom she has co-authored multiple publications. Her recent publications date to 2026, indicating ongoing activity in her research areas.
Metrics
- h-index: 1
- Publications: 5
- Citations: 1
Positions
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University of Arkansas at Fayetteville publications 2025–2026ENPL ORCID
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professor and head of the Entomology and Plant Patholo publications 2025–2026University of Arkansas at Fayetteville Entomology & Plant Pathology Listing
Selected Publications
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Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection (2026)
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Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita (2026)
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SMART: Speedy Measurement of Arabidopsis Rosette Traits (2026)
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Optimizing Conditions for Bacillus subtilis Ectopic Gene Expression and Delivery via Seed Treatment (2025)
Collaboration Network
Top Collaborators
- Optimizing Conditions for Bacillus subtilis Ectopic Gene Expression and Delivery via Seed Treatment
- Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita
- Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection
- Optimizing Conditions for Bacillus subtilis Ectopic Gene Expression and Delivery via Seed Treatment
- Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita
- Optimizing Conditions for Bacillus subtilis Ectopic Gene Expression and Delivery via Seed Treatment
- Optimizing Conditions for Bacillus subtilis Ectopic Gene Expression and Delivery via Seed Treatment
- Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita
- Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita
- Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita
- Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita
- Overexpression of AtPROPEP6 enhances Arabidopsis thaliana resistance to Southern root-knot nematode Meloidogyne incognita
- Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection
- Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection
- Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection
- Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection
- Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection
- Cell-type-resolved transcriptional reprogramming in resistant soybean roots reveals cambial activation and early syncytium initiation upon nematode infection
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