Scientist V┬а
Ph.D: International Graduate School in Genetics and Functional Genomics, University of Cologne, Germany.
Postdoctoral Fellow: Department of Plant Biology, University of California, Davis, USA
- 91-11-26741612,14,17 Ext. - 117
- aranjan@nipgr.ac.in
Profile
Research Interests
We are interested in investigating the plant development in response to environmental signals and optimizing plant developmental features for efficient photosynthesis in crop plants using genomics, molecular breeding and molecular biology tools.
1. Understanding the interaction between light and temperature signaling to regulate plant development and architecture:
Light and temperature are two most important environmental factors for plant growth and development. The genetic and molecular basis of signaling of environmental factors and their influence on plant growth has been mostly studied in model plant┬аArabidopsis┬а.Therefore, a systematic study to characterize the influence of changing light and temperature conditions to the development of crop plants, and the underlying genetic basis is warranted for optimizing the plant growth in desirable way in the context of climate change. We are studying the interaction of light and temperature signaling and their influence on plant growth of tomato (Solanum lycopersicum) and Rice(Oryza sativa), which belong to diverse clades of angiosperms and are two very important plants of economic importance with rich genetic resources, with following objectives:
i) Defining the interaction of light and temperature to determine leaf development and plant architecture.
ii) Establishing the genetic basis of crosstalk of light and temperature signaling, and their integration to plant development.
iii) Identification and validation of key genetic regulators mediating developmental changes in response to light and temperature signals.
2. Optimizing plant developmental features for efficient photosynthesis in crop plants:
The importance of improving leaf photosynthetic efficiency to increase the crop yield has been well recognized, and will become increasingly essential if the necessary yield increases are to be achieved. Photosynthesis is a multifaceted plant process that has contributions from ambient environmental conditions, developmental features and biochemical reactions. Leaf characteristics, branching and canopy features are the most important plant developmental features for the photosynthesis and carbon assimilation. However the potential to manipulate the leaf morphology and anatomy, and underlying genetic basis to improve photosynthetic efficiency is largely unexplored. With this background, we want to address following questions in model crop plant Rice(Oryza sativa):
i) Exploring the natural genetic variation for the photosynthesis and its possible link with plant, in particular leaf, developmental features.
ii) Deciphering the genetic link, and underlying key regulatory genes, between photosynthetic efficiency and plant developmental features.
iii) Manipulating the leaf and branching traits for efficient photosynthesis through breeding and/or genetic engineering.i) Defining the interaction of light and temperature to determine leaf development and plant architecture.
ii) Establishing the genetic basis of crosstalk of light and temperature signaling, and their integration to plant development.
iii) Identification and validation of key genetic regulators mediating developmental changes in response to light and temperature signals.
Professional & Academic Background
Staff Scientist V (January 2022 тАУ present) : National Institute of Plant Genome Research, New Delhi.
Staff Scientist IV (August 2018 тАУ December 2021) : National Institute of Plant Genome Research, New Delhi.
Staff Scientist III (April 2015 тАУ August 2018) : National Institute of Plant Genome Research, New Delhi.
Invited Guest Scientist (2015) : Cluster of Excellence on Plant Sciences, University of Cologne and Dusseldorf, Germany.
Post-Doctoral Fellow (2011 тАУ 2015): Department of Plant Biology, University of California, Davis, USA.
Ph.D. (2006 тАУ 2010): International Graduate School in Genetics and Functional Genomics, University of Cologne, Germany.
M.Sc. (2004 тАУ 2006): National Research Center on Plant Biotechnology, Indian Agricultural Research Institute, New Delhi.
B.Sc. (2000 тАУ 2004): Institute of Agricultural Sciences, Banaras Hindu University, Varanasi.
Awards & Honors
Selected as an Associate Fellow of Indian National Science Academy (INSA), India (2026)
Elected as a Fellow of The National Academy of Sciences (NASI), India (2025)
SERB-Early Career Research Award from Department of Science and Technology, India (2016)
Innovative Young Biotechnologist Award (IYBA) 2015 from Department of Biotechnology, India (2016).
Young Scientist Award of Indian Society for Plant Physiology during 3rd International Plant Physiology Congress at New Delhi, India (2015)
CEPLAS Fellowship as a guest scientist at University of Cologne and Dusseldorf, Germany, (2015)
Ramalingaswamy Re-entry Fellowship from Department of Biotechnology, India, (2014)
INSPIRE faculty award for Plant and Agriculture from Department of Science and Technology, India (2014, Fellowship not availed).
F1000 Associate faculty member for Plant Genomes and Evolution for post-publication peer reviewing (2012 - 2017)
NSF Post-doctoral fellowship at University of California, Davis, USA (2011 тАУ 2015)
The best PhD student publication 2010/11 in the category Plants or microbes, University of Cologne, Germany (2011)
North Rhine Westphalia international graduate fellowship for Ph.D.studies at University of Cologne, Germany (2006 тАУ 2010)
IARI Gold Medal for outstanding academic performance in M.Sc (2007)
Junior Research Fellowship from Indian Council of Agricultural Research for M.Sc. studies (2004 тАУ 2006)
BHU Gold Medal for standing 1st in B.Sc. (2005)
BHU merit scholarship for B.Sc.(Agriculture) at Banaras Hindu University, Varanasi (2000 тАУ 2004)
Current Members
Dr. Jayendra Pandey
DBT-M.K. Bhan Fellow
Harnessing wild rice genetics for improved photosynthesis and stress tolerance in crops
- jayendra.pandey@nipgr.ac.in
Dr. Ritesh Kumar Raipuria
Research Associate
Genetic integration of ROS signaling in thermomorphogenesis
- raipuriaritesh@nipgr.ac.in
Dr. Chirag Singhal
Research Associate
Identifying the genetic regulators for leaf thermomorphogenesis
- chirag@nipgr.ac.in
Ms. Prakshi Aneja
Ph.D. Student (CSIR Fellow)
Investigating the variations in leaf thickness and understanding the underlying genetic basis
- prakshianeja@nipgr.ac.in
Ms. Vasundara Devi S
Ph.D. Student (DBT Fellow)
Decoding the epigenetic aspect of plant response to environment
- vasundara@nipgr.ac.in
Mr. Mahesh Kumar Panda
Ph.D. Student (CSIR Fellow)
Investigating genetic regulators involved in mesophyll cell development
- maheshkumarpanda@nipgr.ac.in
Mr. Rajarshi Sanyal
PhD Student (DBT fellow)
Dissecting the genetic determinants mediating transcriptional control of leaf photosynthesis
- rsanyal@nipgr.ac.in
Ms. Muskaan Johnson
Ph.D. Student (UGC Fellow)
Exploring sugar partitioning in shaping plant responses to environment
- muskaanjohnson@nipgr.ac.in
Ms. Rushali Dua
PhD Student (i3C BRIC-RCB)
Exploiting natural variation to identify the genetic determinants for increasing photosynthetic efficiency
- rushali13@nipgr.ac.in
Mr. Ajmal Basha
Project Associate тАУ I
Genome editing for higher photosynthetic efficiency
- ajmal@nipgr.ac.in
Former Group Members
Dr. Sourav Chatterjee
Ph.D. Student (2018-2025)
Current: Postdoctoral Fellow, University of Essex, UK
- souravchatterjee.bgb@gmail.com
Dr. Zainab Mirza
Project Associate-II
Current: Research Fellow, Delhi University, India
- zainabmirza831@gmail.com
Dr. Aditi Dwivedi
Ph.D. Student (2017-2024)
Current: Postdoctoral Fellow, University of California, Davis, USA
- adwivedi@ucdavis.edu
Dr. Benedict Analin A
Project Associate – II (2022-2023)
Current: Postdoctoral Fellow, Texas A&M AgriLife Research at Uvalde, USA
- benana3@gmail.com
Mr. Ashish Chauhan
Project Associate I (2019-2022)
Current: PhD Student, Durham University, UK
- ashish@nipgr.ac.in
Dr. Vikram Jathar
Ph.D. Student (2016-2022)
Current: Postdoctoral Fellow, University of Massachusetts, Amherst, USA
- vjathar@umass.edu
Mr. Roshankumar Jadhav
Project Associate I (2020 – 2022)
Current: PhD Student, University of Tasmania, Australia
- roshanjadhav81292@gmail.com
Dr. Kumud Saini
DBT- RA & SERB-National Post Doctoral Fellow (2017-2021)
Current: Postdoctoral Fellow, Sainsbury Laboratory, University of Cambridge, UK
- kumudsaini17@gmail.com
Mr. Jyotirmaya Mathan
Ph.D. Student (2015-2021)
Current: Assistant Professor in Botany at Odisha Public Service Commission
- jyotirmayabot99@gmail.com
Ms. Juhi Bhattacharya
Ph.D. Student (2015-2021)
Current: Assistant Professor, Jodhpur, Rajasthan.
- juhi.bhattacharya152@gmail.com
Dr. Anuradha Singh Yadav
SERB-National Post Doctoral Fellow (2016-2018)
Current: Postdoctoral Fellow, MSU, East Lansing, USA
- annusingh1206@gmail.com
Dr. Shaifali Pal
SERB-National Post Doctoral Fellow (2017-2018)
- pal_shaifali@yahoo.co.in
Dr. Upendra Kumar Singh
NIPGR Post Doctoral Fellow (2015-2017)
Current: Current: Assistant Professor at BBMKU, Dhanbad
- Upendraskumar@gmail.com
Publications
Chatterjee S, Dwivedi A, Sarkar AK,┬аRanjan A┬а(2026) A cytokinin-auxin antagonistic module participates in nitrogen-triggered tiller outgrowth in rice.┬аPlant Physiology,┬а201(1):kiag258.┬аdo
Srivastava D, Bhadu V, Sahoo RN, Ghosh AK, Upadhyay P, Bhardwaj A, Udvardi MK,┬аRanjan A, Sinharoy S (2026) Organized peripheral vascular strand development in nodules is controlled by a bHLH/HLH heterodimer.┬аNew Phytologist.┬аDOI:┬а10.1111/nph.
Sanyal R,┬аRanjan A┬а(2025) Optimizing photosynthesis by targeting light signaling transcriptional networks.┬аJournal of Experimental Botany, 77(2):282-295.┬а┬аhttps://doi.
Singh A, Mathan J, Dwivedi A, Rani R,┬аRanjan A┬а(2025) Integration of metabolite and transcriptome profiles of cultivated and wild rice to unveil gene regulatory networks and key genes determining rice source and sink strength.┬аFunctional & Integrative Genomics, 25(1): 97.┬аhttps://doi.org/10.1007/
Bhardwaj A, Gupta M, Bhattacharjee O, Raul B, Ghosh AK, Nagalla LVS, Yadav P, Bandyopadhyay K,┬аRanjan A, Sinharoy S (2025) RSD-mediated suppression of NIN and NLP2 transcription is crucial for symbiotic nitrogen fixation.┬аNew Phytologist249(1):389-405.┬аhtt
Mirchandani R, Kandpal M,┬аRanjan A, Sinharoy S, Senthil-Kumar M (2025) Induced post-invasive defenses in the nonhost plant┬аParthenium hysterophorus┬аL. prevent root cortical colonization by Macrophomina phaseolina and impart resistance to dry root rot.┬аEnvironmental and Experimental Botany┬а237: 106197.┬аhttps://doi.org/10.
Lata S, Kushwah NS,┬аRanjan A, Raipuria RK, Kumar P, Srinivasan R, Bhat SR (2025) N-terminal coding sequences of the┬аArabidopsis thaliana┬аnuclear encoded mitochondrial ribosomal protein subunit gene┬аRps14┬аare an integral part of its┬аpromoter Journal of Plant Biochemistry and Biotechnology┬а34: 706-713.┬аhttps://doi.org/10.
Mathan J, Dwivedi A,┬аRanjan A┬а(2025) Revisiting development and physiology of wild rice relatives for crop improvement and climate resilience.┬аPlant Cell Reports, 44: 55┬аhttps://doi.org/10.1007/s00299-025-03448-3.
Aneja P, Sanyal R, Ranjan A (2025) Leaf growth in third dimension: a perspective of leaf thickness from genetic regulation to ecophysiology. New Phytologist, 245: 989-999.┬аhttps://doi.org/10.1111/nph.20246.
Angira A, Yadav S, Mathur P, Baranwal VK,┬аRanjan A, Choudhary N (2025) In-silico prediction of coat protein structure of Indian citrus ringspot virus and their interactions with the Argonaut2/DCL4 proteins.┬аVirusDisease.┬аhttps://doi.org/10.1007/s13337-024-00904-8.
Angira A, Baranwal VK,┬аRanjan A, Choudhary N (2024) Identification of an RNA silencing suppressor encoded by an Indian citrus ringspot virus.┬аPhysiology and Molecular Biology of Plants.https://doi.org/10.1007/s12298-024-01524-8
Srivastava D, Ghosh AK,┬аRanjan A, Sinharoy S (2024) Genome sequencing of Mesorhizobium Spp. NI-7, an efficient nitrogen-fixing microsymbiont of chickpea with potential to unravel the molecular mechanisms of symbiotic nitrogen fixation in legumes.┬аJournal of Plant Biochemistry and Biotechnology,┬аhttps://doi.org/10.1007/s13562-024-00917-w
Kumar R, Kumar C, Roy Choudhury D,┬аRanjan A, Raipuria RK, Dubey KKD, Mishra A, Kumar C, Manzoor MM, Kumar A, Kumari A, Singh K, Singh GP, Singh R (2024) Isolation, Characterization, and Expression Analysis of NAC Transcription Factor from Andrographis paniculata (Burm. f.) Nees and Their Role in Andrographolide Production.┬аGenes (Basel)┬а15(4):422.
Angira A, Baranwal VK,┬аRanjan A, Choudhary N (2024) Optimization of DAC-ELISA and IC-RT-PCR using the developed polyclonal antibody and one-step RT-PCR assays for detection of Indian citrus ringspot virus in kinnow orange of Punjab, India.┬аJournal of Virological Methods┬а329:114972.
Yadav RK, Analin B, Panda MK,┬аRanjan A, Singh AP (2023). Brassinosteroids-regulated nitrogen metabolism fine-tunes growth physiology and low nitrogen response in tomato.┬аEnvironmental and Experimental Botany┬а216: 105528.
Sharma D, Singh S, Singh K, Dwivedi A,┬аRanjan A, Sinha AK (2023). Phosphorylation of PIF3 by MPK6 is required for coordinated regulation of miRNA biogenesis and hypocotyl elongation in Arabidopsis.┬аEnvironmental and Experimental Botany┬а210: 105345.
Saini K, Dwivedi A,┬аRanjan A┬а(2022). High temperature restricts cell division and leaf size by coordination of PIF4 and TCP4 transcription factors.┬аPlant Physiology, 190(4): 2380-2397.
Singh J, Das S, Kapuganti JG,┬аRanjan A, Foyer CH, Thakur JK (2022). Physiological implications of SWEETs in plants and their potential applications in improving source-sink relationships for enhanced yield.┬аPlant Biotechnology Journal, 21(8):1528-1541.
Singh R, Dwivedi A, Singh Y, Kumar K,┬аRanjan A, Verma PK (2022). Global transcriptome and co-expression analysis reveal robust host defence pathway reprogramming and identify key regulators of early phases of Cicer-Ascochyta interactions.┬аMolecular Plant Microbe Interactions, 35(11):1034-1047.
Jathar V, Saini K, Chauhan A, Rani R, Ichihashi Y,┬аRanjan A┬а(2022). Spatial control of cell division by GA-OsGRF7/8 module in a leaf explaining the leaf length variation between cultivated and wild rice.┬аNew Phytologist┬а234(3): 867-883.
Irulappan V, Kandpal M, Saini K, Rai A,┬аRanjan A, Sinharoy S, Senthil-Kumar M (2022) Drought stress exacerbates fungal colonization and endodermal invasion and dampens defense responses to increase dry root rot in chickpea.┬аmolecular Plant Microbe Interactions┬а35(7): 583-591.
Mathan J, Singh A, Jathar V,┬аRanjan A┬а(2021).┬аHigh photosynthesis rate in two wild rice species is driven┬аby leaf anatomy mediating high Rubisco activity and electron┬аtransport rate.┬аJournal of Experimental Botany┬а72(20):7119-7135
Mathan J, Singh A,┬аRanjan A┬а(2021). Sucrose transport and metabolism control carbon partitioning between stem and grain in rice.┬аJournal of Experimental Botany┬а72(12): 4355-4372.
Mathan J, Singh A,┬аRanjan A┬а(2021), Sucrose transport in response to drought and salt stress involves ABAтАРmediated induction of┬аOsSWEET13┬аand┬аOsSWEET15┬аin rice.┬аPhysiologia Plantarum,171(4):620-637
Hegenauer V, Slaby P, K├╢rner M, Bruckm├╝ller J, Burggraf R, Albert I, Kaiser B, L├╢ffelhardt B, Droste-Borel I, Sklenar J, Menke FLH, Ma─Нek B,┬аRanjan A,┬аSinha NR,┬аN├╝rnberger T, Felix G, Krause K, Stahl M, Albert M (2020) The tomato receptor CuRe1 senses ┬а ┬аa cell wall protein to identify┬аCuscuta┬аas a pathogen,┬аNature Communications,┬а┬а11(1):5299.
Artz O, Dickopf S,┬аRanjan A, Kreiss M, Abraham ET, Boll V, Rensing SA, Hoecker U (2019). Characterization of spa mutants in the moss┬аPhyscomitrella┬аprovides evidence for functional divergence of SPA genes during the evolution of land plants.┬аNew Phytologist┬а224: 1613- 1626.
Kumar K, Neelam K, Singh G, Mathan J,┬аRanjan A, Brar DS, Singh K (2019). Production and cytological characterization of a synthetic amphiploid derived from a cross between┬аOryza sativa┬аand┬аOryza punctata.┬аGenome┬а62(11): 705-714.
Ostria-Gallardo┬аE,┬аRanjan┬аA, Ichihashi┬аY, Corcuera┬аLJ,┬аSinha┬аNR (2018).┬аDecoding the gene coexpression network underlying the ability of Gevuina avellana to live in diverse light conditions.┬аNew Phytologist, 220(1): 278-287
Mathan J, Bhattacharya J,┬аRanjan A┬а(2016).┬аEnhancing crop yield via the optimization of plant developmental features.┬аDevelopment┬а143:┬а3283-3294
Fulop D*,┬аRanjan A*, Ofner I, Covington MF, Chitwood DH, West D, Ichihashi Y,┬а┬аHeadland L, Zamir D,┬аMaloof JN, Sinha NR (2016).┬аA new advanced backcross tomato population enables high resolution leaf QTL mapping and gene identification.┬аGenes|Genomes|Genetics (G3)┬а6:┬а3169–3184.┬а(*equal contribution).
Ranjan A, Budke JM, Rowland SD, Chitwood DH, Kumar R, Carriedo L, Ichihashi Y, Zumstein K, Maloof JN, Sinha NR (2016).┬аeQTL regulating transcript levels associated with diverse biological processes in tomato.┬аPlant Physiology┬а172: 328-340.
Lata S,┬аRanjan A, Kushwah NS, Kumar P, Dargan S, Srinivasan R, Bhat SR (2016). Regulatory sequences of the Arabidopsis thaliana Rps19, a nuclear gene encoding mitochondrial ribosomal protein subunit, extend into the upstream gene.┬а┬аJournal of Plant Biochemistry and Biotechnology┬аdoi:10.1007/s13562-016-0392-4
Ostria-Gallardo┬аE*,┬аRanjan┬аA*, Zumstein┬аK, Chitwood┬аDH, Kumar┬аR,┬аTownsley┬аBT, Ichihashi┬аY, Corcuera┬аLJ,┬аSinha┬аNR (2016).┬аTranscriptomic analysis suggests a key role for┬аSQUAMOSAPROMOTER BINDING PROTEIN LIKE,┬аNAC┬аand┬аYUCCA┬аgenes┬аin the heteroblastic development of the temperate rainforest tree┬аGevuina avellana┬а(Proteaceae).┬аNew Phytologist.┬а┬а210(2): 694-708┬а┬а(* equal contribution).
M├╝ller NA, Wijnen CL, Srinivasan A, Ryngajllo M, Ofner I, Lin T,┬аRanjan A, West D, Maloof JN, Sinha NR, Huang S, Zamir D, Jim├йnez-G├│mez JM (2016). Domestication selected for deceleration of the circadian clock in cultivated tomato.┬аNature Genetics.┬а48: 89-93.
Chitwood DH, Kumar R,┬аRanjan A, Pelletier JM, Townsley BT, Ichihashi Y, ┬аMartinez CC, Zumstein K, Harada JJ, Maloof JN, Sinha NR (2015). Light-Induced Indeterminacy Alters Shade-Avoiding Tomato Leaf Morphology.┬аPlant physiology.┬а169 (3): 2030-47.
Mtunguja MK,┬аRanjan A, Laswai HS, Muzanila Y, Ndunguru J, Sinha NR (2015). Genetic diversity of farmer-preferred cassava landraces in Tanzania based on morphological descriptors and single nucleotide polymorphisms.┬аPlant Genetic Resources.┬а(DOI:┬аhttp://dx.doi.org/10.1017/S1479262115000453, Published online: 03 November 2015).
Ranjan A, Townsley BT, Ichihashi Y, Sinha NR, Chitwood DH (2015). An intracellular transcriptomic atlas of the giant coenocyte┬аCaulerpa taxifolia.┬аPLoS Genetics. 11(1):e1004900 (Featured on cover page).
Ranjan A, Ichihashi Y, Farhi M, Zumstein K, Townsley BT, David-Schwrtz R, Sinha NR (2014).┬аDe novo┬аassembly and characterization of the transcriptome of the parasitic weed┬аCuscuta pentagona┬аidentifies genes associated with plant parasitism.┬аPlant Physiology.┬а166: 1186-1199.
Chitwood DH,┬аRanjan A┬аKumar R, Ichihashi Y, Zumstein K, Headland LR, Peng J, Maloof JN, Sinha NR (2014). Resolving distinct genetic regulators of leaf shape within a heteroblastic and ontogenetic context.┬аPlant Cell. 26: 3616-3629.
Balcerowicz M,┬аRanjan A┬а, Rupprecht L, Fiene G, Hoecker U (2014). Auxin represses stomatal development in dark-grown seedlings via Aux/IAA proteins.┬аDevelopment.┬а141(16): 3165-76.
Chitwood DH,Ranjan A,Martinez CC, Headland LR, Thiem T, Kumar R, Covington MF, Hatcher T, Naylor DT, Zimmerman S, Downs N, Raymundo N, Buckler ES, Maloof JN, Aradhya M, Prins B, Li L, Myles S, Sinha NR (2014). A modern ampelography: a genetic basis for leaf shape and venation patterning in┬аVitis vinifera.┬аPlant Physiology.┬а164:259-272 (Featured on cover page)
Ranjan A,┬аDickopf S, Ullrich KK, Rensing SA, Hoecker U (2014). Functional analysis of COP1 and SPA orthologs from Physcomitrella and rice during photomorphogenesis of transgenic Arabidopsis reveals distinct evolutionary conservation.┬аBMC Plant Biology┬а14: 178.
Chitwood DH, Kumar R, Headland LR,┬аRanjan A, Covington MF, Ichihashi Y, Fulop D, Jim├йnez-G├│mez JM, Peng J, Maloof JN, Sinha NR (2013). A quantitative genetic basis for leaf morphology in a set of precisely defined tomato introgression lines.┬аPlant Cell.┬а25: 2465-2481
Ranjan A, Ichihashi Y, Sinha NR (2012). The tomato genome: implications for plant breeding, genomics and evolution. ┬аGenome Biology.┬а13:167 (Featured on cover page and flagged as “Highly accessed”).
Chitwood DH, Headland LR,┬аRanjan A, Martinez CC, Braybrook SA, Koenig DP, Kuhlemeier C, Smith RS, Sinha NR (2012). Leaf asymmetry as a developmental constraint imposed by auxin-dependent phyllotactic patterning.┬аPlant Cell.┬а24: 2318-27.
Ranjan A, Fiene G, Fackendahl P, Hoecker U (2011). The Arabidopsis repressor of light signaling SPA1 acts in the phloem to regulate seedling deetiolation, leaf expansion and flowering time.┬аDevelopment┬а138(9): 1851-62.
Book Chapter
Aneja P, Dwivedi A,┬аRanjan A┬а(2022). Physiology of Crop Yield Under Heat Stress. In: Kumar, R.R., Praveen, S., Rai, G.K. (eds)┬аThermotolerance in Crop Plants. Springer, Singapore, pp 45 -79.
Bhattacharya J, Singh UK and┬аRanjan A┬а(2017) Interaction of Light and Temperature Signaling at the Plant Interphase: From Cue to Stress. In: Senthil-Kumar M (ed),┬аPlant Tolerance to Individual and Concurrent Stresses, Springer (India) Pvt. Ltd., pp 111-132.
Interested to join our lab?
Highly motivated researchers, interested in Plant Development and Environmental Signaling, Photosynthesis, and Genomics, who would like to join the lab are welcome to contact the PI.
For the latest updates, visit the lab website [https://ranjanlab.weebly.com/] and follow us on social media [https://x.com/thePhotoDevoLab]
