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    A genome-wide association analysis identifies a key candidate gene controlling plant growth habit in chickpea
    (Springer Nature Publishing AG, 2026) Kumbhakar, Rajib; Mondal, Mayulika; Thakro, Virevol; Yadava, Yashwant K.; Jha, Uday Chand; Tripathi, Shailesh; Parida, Swarup K.
    Identification of molecular markers governing plant growth habit (PGH) traits that enable mechanical harvestability is pivotal for boosting production efficiency of crops under changing climates and increasing global food demand. With a combinatorial integrated genomics-assisted breeding strategy comprising of association mapping, haplotype-based association, molecular haplotyping and gene expression analysis in a 286 association panel of chickpea (Cicer arietinum), we dissected the genetic basis of PGH traits. This study employed 382,171 genome-wide SNPs (single-nucleotide polymorphisms) obtained from whole-genome sequencing (WGS) of 286 desi and kabuli chickpea accessions and delineated a major genomic locus associated with PGH traits variation, particularly between erect (E)/semi-erect (SE) versus spreading (S)/semi-spreading (SS) types. Within this genomic loci, CaPAR1 (Cicer arietinum PAR1) and its derived natural alleles/haplotypes was identified as the candidate gene. These findings can facilitate generation of high-yielding, erect/semi-erect, mechanically harvestable cultivars through translational genomics and molecular breeding for genetic enhancement of chickpea.
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    Trans-QTL alliance of HKT1 and PHL7 modulate salinity stress tolerance and enhance crop yield endurance
    (John Wiley & Sons, 2026) Mohanty, Jitendra K.; Yadav, Antima; Narnoliya, Laxmi; Thakro, Virevol; Rathore, Deepanshi; Tripathi, Shailesh; Sinharoy, Senjuti; Agarwal, Pinky; Parida, Swarup K.
    Salinity stress can cause significant yield losses in crops because of its major impact on reproductive success. The complexity of salinity stress responses, particularly their tissue- and cell-specific regulation, continues to challenge the translation of molecular insights into tangible crop yield improvements. In the present study, the authors deployed a genomic strategy combining a genome-wide association study, regional association analysis, QTL mapping, fine mapping, and map-based cloning to delineate a pair of novel CaPHL7 and CaHKT1 alleles that regulate yield under salinity stress. The selected contrasting accessions, developed near-isogenic lines (NILs), overexpressed chickpea lines and complemented Arabidopsis lines collectively underscore the functional significance of the identified alleles in relaying yield endurance under salinity stress conditions. Functional characterisation of the genes revealed the intricate transcriptional regulation of CaHKT1 by CaPHL7, which influences the degree of salinity stress tolerance. Furthermore, in our efforts to enhance yield endurance, we discovered a novel regulatory role for the phosphorus (P) starvation-responsive gene (PHL7) in legumes, facilitating salinity stress adaptation. This study provides the first functional validation of a trans-QTL regulatory model in chickpea, where CaPHL7, located on one chromosome, transcriptionally activates CaHKT1 on a separate chromosome. The regulatory mechanism plays a key role in excluding sodium from the transpiration stream, thereby protecting reproductive processes from salinity-induced damage and mitigating yield penalties. This inter-locus regulation explains yield stability and offers useful insights that may be considered in future efforts to enhance salt resilience in chickpea.
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    Shaping the future: Unravelling regulators modulating plant architecture for next-generation crops
    (Elsevier B.V., 2025) Kumbhakar, Rajib; Mondal, Mayulika; Thakro, Virevol; Tripathi, Shailesh; Parida, Swarup K.
    Plant architecture traits in crops are modulated through intricate interactions of various genetic pathways, which helps them to adapt to diverse environmental conditions. Key developmental pathways involved in forming plant architecture include the LAZY-TAC (Tiller Angle Control) module regulating branch and tiller angle, the CLAVATA-WUSCHEL pathway controlling shoot apical meristem fate and the GID1-DELLA pathway governing plant height and tillering in major food crops. These pathways function in concert to shape the overall architecture of plants, which is essential for optimizing light capture, resource allocation, reproductive success and eventual crop yield enhancement. Presently, plant architecture of modern crops has been shaped especially by artificial selection of natural alleles that target yield traits. Recent advances in CRISPR-Cas-based genome editing and genomics-assisted breeding strategies have enabled precise genetic manipulation of natural alleles in the functionally relevant genes regulating plant architecture traits in crops. This will assist researchers to select and introgress superior natural alleles in popular cultivars strategically for restructuring their desirable plant-types suitable for mechanical harvesting as well as enhancing the crop yield potential.
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    Genome-wide association analysis using multi model approach identified novel associations for plant architectural traits in chickpea germplasm collection
    (Springer Nature Publishing AG, 2026) Raiya, Rahul; Yadav, Hemant Kumar; Kumar, Kuldeep; Prakash, Nitish Ranjan; Parida, Swarup K.; Bharadwaj, Chellapilla; Hegde, Venkatraman; Tripathi, Shailesh
    Crop plant architecture dictates plant performance under different ecological conditions and is responsible for its establishment, development, and morphology. It plays an important role in plant breeding for yield optimization, regulating photosynthetic rate and efficiency, utilization of resources, occurrence of pests and diseases, effective mechanical harvesting, space optimization, and improving the quality of plant produce. The subtle changes in the plant’s architecture could help the plant adapt to different ecological niches and are very important, keeping in view the challenges posed due to climate change. A set of 280 diverse genotypes, which included the core collection of chickpea was evaluated during the rabi season of 2021 and 2022. A total of 10 plant architecture related traits, including plant height, first pod height, canopy width, inter-nodal length, and days to flowering were studied and significant variability was observed as per the analysis of variance (ANOVA) and phenotypic descriptors. Diversity based on π and θ estimates suggests the presence of substantial diversity, while Tajima’s D reflects balancing selection due to the abundance of shared alleles. Significant marker trait associations (MTAs) for traits like plant height (PH), first pod height (FDPH) and days to flowering were observed using trait based or BLUP estimates. In total, 97 and 51 MTAs were identified using trait based and BLUP based on multi model GWAS analysis, respectively. Among these 17 were consistent MTAs being present either across the year or were identified using more than one GWAS model. Likewise, 9 consistent MTAs were identified using the BLUP estimates. Interestingly, two genomic regions present on chromosome 5 and 7 were found to harbor multiple MTAs for PH and FPDH. The linkage disequilibrium (LD) block analysis reflects the prevalence of multiple LD blocks in these regions. The allelic effects of the MTAs reflect their additive nature in determining the phenotype. Overall, the MTAs identified in the current study are highly useful for the chickpea breeder in modulating the plant architecture, mainly PH and FPDH.
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    Uncovering DNA methylation landscapes to decipher evolutionary footprints of phenotypic diversity in chickpea
    (Oxford University Press, 2024) Daware, Anurag; Mohanty, Jitendra K.; Narnoliya, Laxmi; Singh, Akansha; Rathore, Deepanshi; Thakro, Virevol; Francis, Aleena; Singh, Nagendra Pratap; Francis, Philip; Tripathi, Shailesh; Chattopadhyay, Debasis; Parida, Swarup K.
    Genetic diversity and environmental factors are long believed to be the dominant contributor to phenotypic diversity in crop plants. However, it has been recently established that, besides genetic variation, epigenetic variation, especially variation in DNA methylation, plays a significant role in determining phenotypic diversity in crop plants. Therefore, assessing DNA methylation diversity in crop plants becomes vital, especially in the case of crops like chickpea, which has a narrow genetic base. Thus, in the present study, we employed whole-genome bisulfite sequencing to assess DNA methylation diversity in wild and cultivated (desi and kabuli) chickpea. This revealed extensive DNA methylation diversity in both wild and cultivated chickpea. Interestingly, the methylation diversity was found to be significantly higher than genetic diversity, suggesting its potential role in providing vital phenotypic diversity for the evolution and domestication of the Cicer gene pool. The phylogeny based on DNA methylation variation also indicates a potential complementary role of DNA methylation variation in addition to DNA sequence variation in shaping chickpea evolution. Besides, the study also identified diverse epi-alleles of many previously known genes of agronomic importance. The Cicer MethVarMap database developed in this study enables researchers to readily visualize methylation variation within the genes and genomic regions of their interest (http://223.31.159.7/cicer/public/). Therefore, epigenetic variation like DNA methylation variation can potentially explain the paradox of high phenotypic diversity despite the narrow genetic base in chickpea and can potentially be employed for crop improvement.
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    Functional allele of a MATE gene selected during domestication modulates seed color in chickpea
    (John Wiley & Sons, 2024) Thakro, Virevol; Varshney, Nidhi; Malik, Naveen; Daware, Anurag; Srivastava, Rishi; Mohanty, Jitendra K; Basu, Udita; Narnoliya, Laxmi; Jha, Uday Chand; Tripathi, Shailesh; Tyagi, Akhilesh K.; Parida, Swarup K.
    Seed color is one of the key target traits of domestication and artificial selection in chickpeas due to its implications on consumer preference and market value. The complex seed color trait has been well dissected in several crop species; however, the genetic mechanism underlying seed color variation in chickpea remains poorly understood. Here, we employed an integrated genomics strategy involving QTL mapping, high-density mapping, map-based cloning, association analysis, and molecular haplotyping in an inter-specific RIL mapping population, association panel, wild accessions, and introgression lines (ILs) of Cicer gene pool. This delineated a MATE gene, CaMATE23, encoding a Transparent Testa (TT) and its natural allele (8-bp insertion) and haplotype underlying a major QTL governing seed color on chickpea chromosome 4. Signatures of selective sweep and a strong purifying selection reflected that CaMATE23, especially its 8-bp insertion natural allelic variant, underwent selection during chickpea domestication. Functional investigations revealed that the 8-bp insertion containing the third cis-regulatory RY-motif element in the CaMATE23 promoter is critical for enhanced binding of CaFUSCA3 transcription factor, a key regulator of seed development and flavonoid biosynthesis, thereby affecting CaMATE23 expression and proanthocyanidin (PA) accumulation in the seed coat to impart varied seed color in chickpea. Consequently, overexpression of CaMATE23 in Arabidopsis tt12 mutant partially restored the seed color phenotype to brown pigmentation, ascertaining its functional role in PA accumulation in the seed coat. These findings shed new light on the seed color regulation and evolutionary history, and highlight the transcriptional regulation of CaMATE23 by CaFUSCA3 in modulating seed color in chickpea. The functionally relevant InDel variation, natural allele, and haplotype from CaMATE23 are vital for translational genomic research, including marker-assisted breeding, for developing chickpea cultivars with desirable seed color that appeal to consumers and meet global market demand.
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    Natural alleles of Mediator subunit genes modulate plant height in chickpea
    (John Wiley & Sons, 2023) Malik, Naveen; Basu, Udita; Srivastava, Rishi; Daware, Anurag; Ranjan, Rajeev; Sharma, Akash; Thakro, Virevol; Mohanty, Jitendra K.; Jha, Uday Chand; Tripathi, Shailesh; Tyagi, Akhilesh K.; Parida, Swarup K.
    Plant height (PH) is an important plant architectural trait targeted during Green Revolution to enhance crop yields. Identification of genes and natural alleles governing plant height without compromising agronomic performance can fill the lacuna of knowledge connecting ideal plant architecture with maximum achievable yield in chickpea. Through coherent strategy involving genome-wide association study, QTL/fine mapping, map-based cloning, molecular haplotyping, and downstream functional genomics, the current study identified two Mediator subunit genes namely, CaMED23 and CaMED5b and their derived natural alleles/haplotypes underlying the major QTLs and trans-acting eQTLs regulating plant height in chickpea. Differential accumulation of haplotype-specific transcripts of these two Mediator genes in corresponding haplotype-introgressed near-isogenic lines (NILs) correlates negatively with the plant height trait. Quantitative as well as qualitative estimation based on histology, scanning electron microscopy, and histochemical assay unraveled the reduced lengths and cell sizes of internodes along with compromised lignin levels in dwarf/semi-dwarf chickpea NILs introgressed with superior CaMED23 and CaMED5b gene haplotypes. This observation, supported by global transcriptome profiling-based diminished expression of various phenylpropanoid pathway genes upstream of lignin biosynthesis in dwarf/semi-dwarf NILs, essentially links plant height with lignin accumulation. The identified molecular signatures in the Mediator subunit genes can be efficiently utilized to develop desirable dwarf/semi-dwarf-type chickpea cultivars without affecting their yield per plant via modulating lignin/phenylpropanoid biosynthesis.
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    A superior gene allele involved in abscisic acid signaling enhances drought tolerance and yield in chickpea
    (Oxford University Press, 2023) Thakro, Virevol; Malik, Naveen; Basu, Udita; Srivastava, Rishi; Narnoliya, Laxmi; Daware, Anurag; Varshney, Nidhi; Mohanty, Jitendra K; Bajaj, Deepak; Dwivedi, Vikas; Tripathi, Shailesh; Jha, Uday Chand; Dixit, Girish Prasad; Singh, Ashok K; Tyagi, Akhilesh K.; Upadhyaya, Hari D; Parida, Swarup K.
    Identifying potential molecular tags for drought tolerance is essential for achieving higher crop productivity under drought stress. We employed an integrated genomics-assisted breeding and functional genomics strategy involving association mapping, fine mapping, map-based cloning, molecular haplotyping and transcript profiling in the introgression lines (ILs)- and near isogenic lines (NILs)-based association panel and mapping population of chickpea (Cicer arietinum). This combinatorial approach delineated a bHLH (basic helix-loop-helix) transcription factor, CabHLH10 (Cicer arietinum bHLH10) underlying a major QTL, along with its derived natural alleles/haplotypes governing yield traits under drought stress in chickpea. CabHLH10 binds to a cis-regulatory G-box promoter element to modulate the expression of RD22 (responsive to desiccation 22), a drought/ABA-responsive gene (via a trans-expression QTL), and two strong yield-enhancement photosynthetic efficiency (PE) genes. This, in turn, upregulates other downstream drought-responsive and abscisic acid signaling genes, as well as yield-enhancing PE genes, thus increasing plant adaptation to drought with reduced yield penalty. We showed that a superior allele of CabHLH10 introgressed into the NILs improved root and shoot biomass and PE, thereby enhancing yield and productivity during drought without compromising agronomic performance. Furthermore, overexpression of CabHLH10 in chickpea and Arabidopsis (Arabidopsis thaliana) conferred enhanced drought tolerance by improving root and shoot agro-morphological traits. These findings facilitate translational genomics for crop improvement and the development of genetically-tailored, climate-resilient, high-yielding chickpea cultivars.
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    Genome-wide cis-regulatory signatures for modulation of agronomic traits as exemplified by drought yield index (DYI) in chickpea
    (Springer Nature Publishing AG, 2019) Sharma, Akash; Basu, Udita; Malik, Naveen; Daware, Anurag; Thakro, Virevol; Narnoliya, Laxmi; Bajaj, Deepak; Tripathi, Shailesh; Hegde, V. S.; Upadhyaya, Hari D.; Tyagi, Akhilesh K.; Parida, Swarup K.
    Developing functional molecular tags from the cis-regulatory sequence components of genes is vital for their deployment in efficient genetic dissection of complex quantitative traits in crop plants including chickpea. The current study identified 431,194 conserved non-coding SNP (CNSNP) from the cis-regulatory element regions of genes which were annotated on a chickpea genome. These genome-wide CNSNP marker resources are made publicly accessible through a user-friendly web-database (http://www.cnsnpcicarbase.com). The CNSNP-based quantitative trait loci (QTL) and expression QTL (eQTL) mapping and genome-wide association study (GWAS) were further integrated with global gene expression landscapes, molecular haplotyping, and DNA-protein interaction study in the association panel and recombinant inbred lines (RIL) mapping population to decode complex genetic architecture of one of the vital seed yield trait under drought stress, drought yield index (DYI), in chickpea. This delineated two constituted natural haplotypes and alleles from a histone H3 protein-coding gene and its transcriptional regulator NAC transcription factor (TF) harboring the major QTLs and trans-acting eQTL governing DYI in chickpea. The effect of CNSNPs in TF-binding cis-element of a histone H3 gene in altering the binding affinity and transcriptional activity of NAC TF based on chromatin immunoprecipitationquantitative PCR (ChIP-qPCR) assay was evident. The CNSNP-led promising molecular tags scanned will essentially have functional significance to decode transcriptional gene regulatory function and thus can drive translational genomic analysis in chickpea.
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    CLAVATA signaling pathway genes modulating flowering time and flower number in chickpea
    (Springer Nature, 2019) Basu, Udita; Narnoliya, Laxmi; Srivastava, Rishi; Sharma, Akash; Bajaj, Deepak; Daware, Anurag; Thakro, Virevol; Malik, Naveen; Upadhyaya, Hari D.; Tripathi, Shailesh; Hegde, V. S.; Tyagi, Akhilesh K.; Parida, Swarup K.
    Unraveling the genetic components involved in CLAVATA (CLV) signaling is crucial for modulating important shoot apical meristem (SAM) characteristics and ultimately regulating diverse SAM-regulated agromorphological traits in crop plants. A genome-wide scan identifed 142 CLV1-, 28 CLV2- and 6 CLV3-like genes, and their comprehensive genomic constitution and phylogenetic relationships were deciphered in chickpea. The QTL/fne mapping and map-based cloning integrated with high-resolution association analysis identifed SNP loci from CaCLV3_01 gene within a major CaqDTF1.1/ CaqFN1.1 QTL associated with DTF (days to 50% fowering) and FN (fower number) traits in chickpea, which was further ascertained by quantitative expression profling. Molecular haplotyping of CaCLV3_01 gene, expressed specifcally in SAM, constituted two major haplotypes that diferentiated the early-DTF and high-FN chickpea accessions from late-DTF and low-FN. Enhanced accumulation of transcripts of superior CaCLV3_01 gene haplotype and known fowering promoting genes was observed in the corresponding haplotype-introgressed early-DTF and high-FN near-isogenic lines (NILs) with narrow SAM width. The superior haplotype-introgressed NILs exhibited early-fowering, high-FN and enhanced seed yield/ productivity without compromising agronomic performance. These delineated molecular signatures can regulate DTF and FN traits through SAM proliferation and diferentiation and thereby will be useful for translational genomic study to develop early-fowering cultivars with enhanced yield/productivity.