91 results on '"Bhatnagar-Mathur P"'
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2. Cytokinin oxidase2-deficient mutants improve panicle and grain architecture through cytokinin accumulation and enhance drought tolerance in indica rice
3. Chickpea Defensin Gene Family: Promising Candidates for Resistance Against Soil-Borne Chickpea Fungal Pathogens
4. Genetic enhancement of Trichoderma asperellum biocontrol potentials and carbendazim tolerance for chickpea dry root rot disease management.
5. Loss-of-function of triacylglycerol lipases are associated with low flour rancidity in pearl millet [Pennisetum glaucum (L.) R. Br.]
6. CRISPR for accelerating genetic gains in under-utilized crops of the drylands: Progress and prospects
7. Multiplexed Host-Induced Gene Silencing of Aspergillus flavus Genes Confers Aflatoxin Resistance in Groundnut
8. Comparative proteomics provide insights on the basis of resistance to Aspergillus flavus infection and aflatoxin production in peanut (Arachis hypogea L.)
9. Pearl Millet Aquaporin Gene PgPIP2;6 Improves Abiotic Stress Tolerance in Transgenic Tobacco
10. Isolation and functional characterization of three abiotic stress-inducible (Apx, Dhn and Hsc70) promoters from pearl millet (Pennisetum glaucum L.)
11. Advances in Crop Improvement and Delivery Research for Nutritional Quality and Health Benefits of Groundnut (Arachis hypogaea L.)
12. An update and perspectives on the use of promoters in plant genetic engineering
13. A novel mitochondrial orf147 causes cytoplasmic male sterility in pigeonpea by modulating aberrant anther dehiscence
14. Comprehensive evaluation of candidate reference genes for real-time quantitative PCR (RT-qPCR) data normalization in nutri-cereal finger millet [Eleusine Coracana (L.)].
15. CRISPR for accelerating genetic gains in under-utilized crops of the drylands: Progress and prospects
16. Chickpea Defensin Gene Family: Promising Candidates for Resistance Against Soil-Borne Chickpea Fungal Pathogens
17. Nitric Oxide (NO) in Plant Heat Stress Tolerance: Current Knowledge and Perspectives
18. Ectopic expression of pigeonpea Orf147 gene imparts partial sterility in Cicer arietinum
19. DREB1A overexpression in transgenic chickpea alters key traits influencing plant water budget across water regimes
20. Rapid, accurate and routine HPLC method for large-scale screening of pro-vitamin A carotenoids in oilseeds
21. Identification and Validation of Reference Genes and Their Impact on Normalized Gene Expression Studies across Cultivated and Wild Cicer Species.
22. Transgenic peanut overexpressing the DREB1A transcription factor has higher yields under drought stress
23. Isolation and Functional Characterization of a Novel Seed-Specific Promoter Region from Peanut
24. Overexpression of a chitinase gene in transgenic peanut confers enhanced resistance to major soil borne and foliar fungal pathogens
25. Pathogen-derived resistance using a viral nucleocapsid gene confers only partial non-durable protection in peanut against peanut bud necrosis virus
26. An efficient method for the production of marker-free transgenic plants of peanut (Arachis hypogaea L.)
27. Genetic engineering of chickpea (Cicer arietinum L.) with the P5CSF129A gene for osmoregulation with implications on drought tolerance
28. Evaluation and validation of reference genes for normalization of quantitative real-time PCR based gene expression studies in peanut.
29. Transgenic approaches for abiotic stress tolerance in plants: retrospect and prospects
30. Stress-inducible expression of At DREB1A in transgenic peanut (Arachis hypogaea L.) increases transpiration efficiency under water-limiting conditions
31. Advances in crop improvement and delivery research for nutritional quality and health benefits of groundnut (Arachis hypogaea L.)
32. Genetic transformation technology: Status and problems
33. 'Role of pearl millet Aquaporin genes in abiotic stress response'
34. Accomplishments and challenges of pigeonpea breeding research in India
35. Phenotypic assessment of groundnut response to key abiotic stress
36. Pathogen-derived resistance using a viral nucleocapsid gene confers only partial non-durable protection in peanut against peanut bud necrosis virus
37. DREB1A promotes root development in deep soil layers and increases water extraction under water stress in groundnut
38. Relationships Between Transpiration Efficiency and Its Surrogate Traits in the rd29A:DREB1A Transgenic Lines of Groundnut
39. Pigeonpea
40. Chickpea
41. Chapter 16: Agrobacterium-Mediated Genetic Transformation of Peanut.
42. Peanut (Arachis hypogaea L.).
43. Chickpea (Cicer arietinum L.).
44. DREB1A promotes root development in deep soil layers and increases water extraction under water stress in groundnut.
45. Multiplexed Host-Induced Gene Silencing of Aspergillus flavus Genes Confers Aflatoxin Resistance in Groundnut.
46. Genetic enhancement of Trichoderma asperellum biocontrol potentials and carbendazim tolerance for chickpea dry root rot disease management.
47. Loss-of-function of triacylglycerol lipases are associated with low flour rancidity in pearl millet [ Pennisetum glaucum (L.) R. Br.].
48. Pearl Millet Aquaporin Gene PgPIP2;6 Improves Abiotic Stress Tolerance in Transgenic Tobacco.
49. Beyond the gene: epigenetic and cis-regulatory targets offer new breeding potential for the future.
50. Genome-wide miRNAs profiles of pearl millet under contrasting high vapor pressure deficit reveal their functional roles in drought stress adaptations.
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