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Pearl Millet a Promising Fodder Crop for Changing Climate: a Review

Overview
Publisher Springer
Specialty Genetics
Date 2024 Jun 24
PMID 38913173
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Abstract

The agricultural sector faces colossal challenges amid environmental changes and a burgeoning human population. In this context, crops must adapt to evolving climatic conditions while meeting increasing production demands. The dairy industry is anticipated to hold the highest value in the agriculture sector in future. The rise in the livestock population is expected to result in an increased demand for fodder feed. Consequently, it is crucial to seek alternative options, as crops demand fewer resources and are resilient to climate change. Pearl millet offers an apposite key to these bottlenecks, as it is a promising climate resilience crop with significantly low energy, water and carbon footprints compared to other crops. Numerous studies have explored its potential as a fodder crop, revealing promising performance. Despite its capabilities, pearl millet has often been overlooked. To date, few efforts have been made to document molecular aspects of fodder-related traits. However, several QTLs and candidate genes related to forage quality have been identified in other fodder crops, which can be harnessed to enhance the forage quality of pearl millet. Lately, excellent genomic resources have been developed in pearl millet allowing deployment of cutting-edge genomics-assisted breeding for achieving a higher rate of genetic gains. This review would facilitate a deeper understanding of various aspects of fodder pearl millet in retrospect along with the future challenges and their solution. This knowledge may pave the way for designing efficient breeding strategies in pearl millet thereby supporting sustainable agriculture and livestock production in a changing world.

References
1.
Adesogan A, Arriola K, Jiang Y, Oyebade A, Paula E, Pech-Cervantes A . Symposium review: Technologies for improving fiber utilization. J Dairy Sci. 2019; 102(6):5726-5755. DOI: 10.3168/jds.2018-15334. View

2.
Amer S, Mustafa A . Short communication: Effects of feeding pearl millet silage on milk production of lactating dairy cows. J Dairy Sci. 2010; 93(12):5921-5. DOI: 10.3168/jds.2010-3279. View

3.
Anuradha N, Satyavathi C, Bharadwaj C, Nepolean T, Mukesh Sankar S, Singh S . Deciphering Genomic Regions for High Grain Iron and Zinc Content Using Association Mapping in Pearl Millet. Front Plant Sci. 2017; 8:412. PMC: 5410614. DOI: 10.3389/fpls.2017.00412. View

4.
Barros J, Temple S, Dixon R . Development and commercialization of reduced lignin alfalfa. Curr Opin Biotechnol. 2018; 56:48-54. DOI: 10.1016/j.copbio.2018.09.003. View

5.
Baucher M, Bernard-Vailhe M, Chabbert B, Besle J, Opsomer C, Van Montagu M . Down-regulation of cinnamyl alcohol dehydrogenase in transgenic alfalfa (Medicago sativa L.) and the effect on lignin composition and digestibility. Plant Mol Biol. 1999; 39(3):437-47. DOI: 10.1023/a:1006182925584. View