[1]

Jans Y, Von Bloh W, Schaphoff S, Muller C. 2021. Global cotton production under climate change – implications for yield and water consumption. Hydrology and Earth System Science 25(4):2027−2044

doi: 10.5194/hess-25-2027-2021
[2]

NOAA National Centers for Environmental Information. 2022. Climate at a glance: statewide time series – Tennessee. USA: NCEI. www.ncei.noaa.gov/access/monitoring/climate-at-a-glance/statewide/

[3]

Li N, Li Y, Biswas A, Wang J, Dong H et al. 2021. Impact of climate change and crop management on cotton phenology based on statistical analysis in the main-cotton-planting areas of China. Journal of Cleaner Production 298(3):126750

doi: 10.1016/j.jclepro.2021.126750
[4]

Subedi B, Poudel A, Aryal S. 2023. The impact of climate change on insect pest biology and ecology: implications for pest management strategies, crop production, and food security. Journal of Agriculture and Food Research 14:100733

doi: 10.1016/j.jafr.2023.100733
[5]

Iqbal A, Iqbal M, Alamzeb M, Qiangg D, Xiangru W, et al. 2022. Climate change and cotton production. In Improvement of Plant Production in the Era of Climate Change, eds. Fahad S, Adnan M, Saud S. UK: CRC Press, Taylor & Francis Group. pp. 95−112 www.researchgate.net/publication/361416659_Climate_Change_and_Cotton_Production

[6]

Khalid MN, Shakeel A, Razzaq H, Amjad I, Amjad N. 2025. Sustainable cotton production in the era of climate change: challenges and adaptive measures. Journal of Agriculture and Biology 3(1):402−415

doi: 10.55627/agribiol.003.01.1265
[7]

Farmaha BS, Sekaran U, Franzluebbers AJ. 2022. Cover cropping and conservation tillage improve soil health in the southeastern United States. Agronomy Journal 114(1):296−316

doi: 10.1002/agj2.20865
[8]

Nouri A, Yoder DC, Raji M, Ceylan S, Jagadamma S et al. 2021. Conservation agriculture increases the soil resilience and cotton yield stability in climate extremes of the southeast US. Communications Earth & Environment 2(1):155

doi: 10.1038/s43247-021-00223-6
[9]

St Aime R, Bridges WC Jr, Narayanan S. 2023. Fall–winter cover crops promote soil health and weed control in the southeastern clayey soils. Agronomy Journal 115(1):242−260

doi: 10.1002/agj2.21246
[10]

Hoogenboom G, Jones JW, Wilkens PW, Porter CH, Boote KJ, et al. 2012. Decision Support System for Agrotechnology Transfer (DSSAT) Version 4.5. Honolulu, HI: University of Hawaii. https://DSSAT.net

[11]

Jones JW, Hoogenboom G, Porter CH, Boote KJ, Batchelor WD, et al. 2003. DSSAT cropping system model. European Journal of Agronomy 18(3−4):235−265

doi: 10.1016/S1161-0301(02)00107-7
[12]

Mohil Pourebrahimi Foumani, Yin X, Fu JS, Yang CE. 2025. Simulation modeling of cotton yield responses to management strategies under climate change: insights from DSSAT. Journal of Plant Nutrition 48(11):1972−1986

doi: 10.1080/01904167.2025.2462702
[13]

Singh J, Ale S, DeLaune PB, Himanshu SK, Barnes EM. 2022. Modeling the impacts of cover crops and no-tillage on soil health and cotton yield in an irrigated cropping system of the Texas Rolling Plains. Field Crops Research 287:108661

doi: 10.1016/j.fcr.2022.108661
[14]

International Panel on Climate Change (IPCC). 2022. Climate Change 2022: Impacts, Adaptation, and Vulnerability. The Sixth Assessment Report of IPCC. IPCC: Working Group II. www.ipcc.ch/report/ar6/wg2/

[15]

Tuttle JR, Idris AM, Brown JK, Haigler CH, Robertson D. 2008. Geminivirus-mediated gene silencing from Cotton leaf crumple virus is enhanced by low temperature in cotton. Plant Physiology Journal 148(1):41−50

doi: 10.1104/pp.108.123869
[16]

Raper RL, Reeves DW, Burmester CH, Schwab EB. 2000. Tillage depth, tillage timing, and cover crop effects on cotton yield, soil strength, and tillage energy requirements. Applied Engineering in Agriculture 16(4):379−385

doi: 10.13031/2013.5363
[17]

Latif Virk A, Yadav GS, Zhao X, Kan ZR, Qi JY, et al. 2021. Role of legumes in managing soil organic matter and improving crop yield. In Soil Organic Matter and Feeding the Future, ed. Lal R. 1st Edition. Boca Raton: CRC Press. pp: 259−278 doi: 10.1201/9781003102762-11

[18]

Wang S, Heal KV, Zhang Q, Yu Y, Tigabu M, et al. 2023. Soil microbial community, dissolved organic matter and nutrient cycling interactions change along an elevation gradient in subtropical China. Journal of Environmental Management 345:118793

doi: 10.1016/j.jenvman.2023.118793
[19]

Yuvaraj M, Pandiyan M, Gayathri P. 2020. Role of legumes in improving soil fertility status. In Legume Crops - Prospects, Production and Uses, ed. Hasanuzzaman M. London, UK: IntechOpen. pp. 33−65 doi: 10.5772/intechopen.93247

[20]

Akchaya K, Parasuraman P, Pandian K, Vijayakumar S, Thirukumaran K, et al. 2025. Boosting resource use efficiency, soil fertility, food security, ecosystem services, and climate resilience with legume intercropping: a review. Frontiers in Sustainable Food Systems 9:1527256

doi: 10.3389/fsufs.2025.1527256
[21]

Blanco-Canqui H, Lal R. 2010. Principles of Soil Conservation and Management. Dordrecht, Netherlands: Springer. doi: 10.1007/978-1-4020-8709-7

[22]

Donovan M, Monaghan R. 2021. Impacts of grazing on ground cover, soil physical properties, and soil loss via surface erosion: a novel geospatial modelling approach. Journal of Environmental Management 287:112206

doi: 10.1016/j.jenvman.2021.112206
[23]

Batey T. 2009. Soil compaction and soil management − a review. Soil Use and Management 25(4):335−345

doi: 10.1111/j.1475-2743.2009.00236.x
[24]

Huang R, Crowther TW, Sui Y, Sun B, Liang Y. 2021. High stability and metabolic capacity of the bacterial community promote the rapid reduction of easily decomposing carbon in soil. Communications Biology 4:1376

doi: 10.1038/s42003-021-02907-3
[25]

Campbell TP, Ulrich DEM, Toyoda J, Thompson J, Munsky B, et al. 2022. Microbial communities influence soil dissolved organic carbon concentration by altering metabolite composition. Frontiers in Microbiology 12:799014

doi: 10.3389/fmicb.2021.799014
[26]

Ogle SM, Alsaker C, Baldock J, Bernoux M, Breidt FJ, et al. 2019. Climate and soil characteristics determine where no-till management can store carbon in soils and mitigate greenhouse gas emissions. Scientific Reports 9:11665

doi: 10.1038/s41598-019-47861-7
[27]

Hafeez A, Batool R, Arshad A, Khan MN, Ali S, et al. 2025. Soil and water conservation under changing climate. In Challenges and Solutions of Climate Impact on Agriculture, eds. Fahad S, Adnan M, Munir I, Lal R, Nawaz T et al. Amsterdam: Elsevier. pp. 307−328 doi: 10.1016/B978-0-443-23707-2.00012-X

[28]

Johnson FE II, Roth RT, Ruffatti MD, Armstrong SD. 2024. Cover crop impacts on nitrogen losses and environmental damage cost. Agriculture, Ecosystems & Environment 363:108859

doi: 10.1016/j.agee.2023.108859
[29]

Bhatnagar S, Chaudhary R, Sharma S, Janjhua Y, Thakur P, et al. 2024. Exploring the dynamics of climate-smart agricultural practices for sustainable resilience in a changing climate. Environmental and Sustainability Indicators 24:100535

doi: 10.1016/j.indic.2024.100535
[30]

Blanco-Canqui H, Shapiro CA, Wortmann CS, Drijber RA, Mamo M, et al. 2013. Soil organic carbon: the value to soil properties. Journal of Soil and Water Conservation 70(5):129A−134A

doi: 10.2489/jswc.68.5.129A
[31]

Koudahe K, Allen SC, Djaman K. 2022. Critical review of the impact of cover crops on soil properties. International Soil and Water Conservation Research 10(3):343−354

doi: 10.1016/j.iswcr.2022.03.003
[32]

Dabney SM, Delgado JA, Reeves DW. 2001. Using winter cover crops to improve soil and water quality. Communications in Soil Science and Plant Analysis 32(7-8):1221−1250

doi: 10.1081/CSS-100104110
[33]

Chen J, Sainju UM, Liu R, Tan G, Wen M, et al. 2024. Winter legume cover crop with adequate nitrogen fertilization enhance dryland maize yield and water-use efficiency. Agricultural Water Management 306:109209

doi: 10.1016/j.agwat.2024.109209
[34]

Snapp SS, Ugarte CM, Hunter DW, Wander MM. 2022. Cover crops for soil health. In Improving soil health, ed. Horwath WR. Cambridge, UK: Burleigh Dodds Science Publishing. pp. 147−188 doi: 10.19103/as.2021.0094.11

[35]

Shamshiri RR, Mahadi MR, Thorp KR, Ismail WIW, Ahmad D, et al. 2017. Adaptive Management Framework for Evaluating and Adjusting Microclimate Parameters in Tropical Greenhouse Crop Production Systems. In Plant Engineering, ed. Jurić S. London, UK: IntechOpen. doi: 10.5772/intechopen.69972

[36]

Busari MA, Kukal SS, Kaur A, Bhatt R, Dulazi AA. 2015. Conservation tillage impacts on soil, crop and the environment. International Soil and Water Conservation Research 3(2):119−129

doi: 10.1016/j.iswcr.2015.05.002
[37]

Amin, R, Jan SS, Butt M, Manan A, Khan M, et al. 2025. Soil carbon sequestration through cover crops and reduced tillage: a climate-smart agricultural strategy for mitigating climate change and improving soil health. Kashf Journal of Multidisciplinary Research 2(4):20−37

doi: 10.71146/kjmr396
[38]

Diyaolu CO, Folarin IO. 2024. The role of biodiversity in agricultural resilience: protecting ecosystem services for sustainable food production. International Journal of Research Publication and Reviews 5(10):1560−1573

doi: 10.55248/gengpi.5.1024.2741
[39]

Dardonville M, Bockstaller C, Villerd J, Therond O. 2022. Resilience of agricultural systems: biodiversity-based systems are stable, while intensified ones are resistant and high-yielding. Agricultural Systems 197:103365

doi: 10.1016/j.agsy.2022.103365
[40]

Cornell CR, Zhang Y, Ning D, Xiao N, Wagle P, et al. 2023. Land use conversion increases network complexity and stability of soil microbial communities in a temperate grassland. The ISME Journal 17(12):2210−2220

doi: 10.1038/s41396-023-01521-x