[1]

Min S, Waibel H, Cadisch G, Langenberger G, Bai J, et al. 2017. The economics of smallholder rubber farming in a mountainous region of southwest China: elevation, ethnicity, and risk. Mountain Research and Development 37:281−293

doi: 10.1659/MRD-JOURNAL-D-16-00088.1
[2]

Fox J, Castella JC. 2013. Expansion of rubber (Hevea brasiliensis) in Mainland Southeast Asia: what are the prospects for smallholders? The Journal of Peasant Studies 40:155−170

doi: 10.1080/03066150.2012.750605
[3]

Silva Alves Muniz T. 2023. Materiality of Rubber: An emerging past from the Brazilian amazon that entangled the world. International Journal of Historical Archaeology 27:1134−1160

doi: 10.1007/s10761-023-00701-x
[4]

Xu W, Zhang Y, Tahir A, Cao Y, Kuang C, et al. 2024. Rubber-based agroforestry ecosystems enhance soil enzyme activity but exacerbate microbial nutrient limitations. Forests 15:1827

doi: 10.3390/f15101827
[5]

Ancín M, Gámez AL, Jauregui I, Galmes J, Sharwood RE, et al. 2024. Does the response of Rubisco and photosynthesis to elevated [CO2] change with unfavourable environmental conditions? Journal of Experimnetal Botany 22:7351−7364

doi: 10.1093/jxb/erae379
[6]

Zandalinas SI, Rivero RM, Martínez V, Gómez-Cadenas A, Arbona V. 2016. Tolerance of citrus plants to the combination of high temperatures and drought is associated to the increase in transpiration modulated by a reduction in abscisic acid levels. BMC Plant Biology 16:105

doi: 10.1186/s12870-016-0791-7
[7]

Li Q, Wang L, Fu Y, Lin D, Hou M, et al. 2023. Transformation of soil organic matter subjected to environmental disturbance and preservation of organic matter bound to soil minerals: a review. Journal of Soils and Sediments 23:1485−1500

doi: 10.1007/s11368-022-03381-y
[8]

Hussain S, Hussain S, Guo R, Sarwar M, Ren X, et al. 2021. Carbon sequestration to avoid soil degradation: A review on the role of conservation tillage. Plants 10:2001

doi: 10.3390/plants10102001
[9]

Wu J, Liu W, Chen C. 2016. Can intercropping with the world's three major beverage plants help improve the water use of rubber trees? Journal of Applied Ecology 53:1787−1799

[10]

Vrignon-Brenas S, Gay F, Ricard S, Snoeck D, Perron T, et al. 2019. Nutrient management of immature rubber plantations. A review. Agronomy for Sustainable Development 39:11

doi: 10.1007/s13593-019-0554-6
[11]

Prem M, Ranjan P, Seth N, Patle GT. 2020. Mulching techniques to conserve the soil water and advance the crop production—a review. Current World Environment 15:10−30

doi: 10.12944/cwe.15.special-issue1.02
[12]

Naorem A, Jayaraman S, Dang YP, Dalal RC, Sinha NK, et al. 2023. Soil constraints in an arid environment—challenges, prospects, and implications. Agronomy 13:220

doi: 10.3390/agronomy13010220
[13]

Sun R, Wu Z, Lan G, Yang C, Fraedrich K. 2021. Effects of rubber plantations on soil physicochemical properties on Hainan Island, China. Journal of Environmental Quality 6:1351−1363

doi: 10.1002/jeq2.20282
[14]

Carr MKV. 2012. The water relations of rubber (Hevea brasiliensis): a review. Experimental Agriculture 48:176−193

doi: 10.1017/S0014479711000901
[15]

Galmés J, Kapralov MV, Copolovici LO, Hermida-Carrera C, Niinemets Ü. 2015. Temperature responses of the Rubisco maximum carboxylase activity across domains of life: phylogenetic signals, trade-offs, and importance for carbon gain. Photosynthesis Research 123:183−201

doi: 10.1007/s11120-014-0067-8
[16]

Cheng L, Jiang H, Xie G, Wang J, Peng W, et al. 2024. Photosynthesis and latex burst characteristics in different varieties of rubber trees (Hevea brasiliensis) under chilling stress, combing bark tensile property and chemical component analysis. Forests 15:1408

doi: 10.3390/f15081408
[17]

Bharath P, Gahir S, Raghavendra AS. 2021. Abscisic acid-induced stomatal closure: an important component of plant defense against abiotic and biotic stress. Frontiers in Plant Science 12:615114

doi: 10.3389/fpls.2021.615114
[18]

Thompson M, Gamage D, Hirotsu N, Martin A, Seneweera S. 2017. Effects of elevated carbon dioxide on photosynthesis and carbon partitioning: a perspective on root sugar sensing and hormonal crosstalk. Frontiers in Physiology 8:578

doi: 10.3389/fphys.2017.00578
[19]

Ogbaga CC, Stepien P, Athar HUR, Ashraf M. 2018. Engineering Rubisco activase from thermophilic cyanobacteria into high-temperature sensitive plants. Critical Reviews in Biotechnology 38:559−572

doi: 10.1080/07388551.2017.1378998
[20]

Flexas J, Galmés J, Gallé A, Gulías J, Pou A, et al. 2010. Improving water use efficiency in grapevines: potential physiological targets for biotechnological improvement. Australian Journal of Grape and Wine Research 16:106−121

doi: 10.1111/j.1755-0238.2009.00057.x
[21]

Rao VUM, Rao AVMS, Rao GGSN, Satyanarayana T, Manikandan N, et al. 2011. Impact of climate change on crop water requirements and adaptation strategies. In Challenges and Opportunities in Agrometeorology, eds. Attri S, Rathore L, Sivakumar M, Dash S. Berlin, Heidelberg: Springer. pp. 311−319 doi: 10.1007/978-3-642-19360-6_24

[22]

Bhattacharya A. 2022. Effect of low temperature stress on photosynthesis and allied traits: a review Physiological Processes in Plants Under Low Temperature Stress. Singapore: Springer. pp. 199−297 doi: 10.1007/978-981-16-9037-2_3

[23]

Knapp BD, Huang KC. 2022. The effects of temperature on cellular physiology. Annual Review of Biophysics 51:499−526

doi: 10.1146/annurev-biophys-112221-074832
[24]

Kobayashi N, Kumagai To, Miyazawa Y, Matsumoto K, Tateishi M, et al. 2014. Transpiration characteristics of a rubber plantation in central Cambodia. Tree Physiology 34:285−301

doi: 10.1093/treephys/tpu009
[25]

Miyake C. 2010. Alternative electron flows (water–water cycle and cyclic electron flow around PSI) in photosynthesis: molecular mechanisms and physiological functions. Plant and Cell Physiology 51:1951−1963

doi: 10.1093/pcp/pcq173
[26]

Rajkhowa S, Bose B, Sarma J, Kumari R. 2022. RuBisCo activase as a response to environmental stress in plants. In Photosynthesis and respiratory cycles during environmental stress response in plants, ed. Roychoudhury A. New York, NY, USA: Apple Academic Press. pp. 115−140 doi: 10.1201/9781003315162

[27]

Gautam H, Fatma M, Sehar Z, Iqbal N, Albaqami M, et al. 2022. Exogenously-sourced ethylene positively modulates photosynthesis, carbohydrate metabolism, and antioxidant defense to enhance heat tolerance in rice. International Journal of Molecular Sciences 23:1031

doi: 10.3390/ijms23031031
[28]

Chaves MM, Maroco JP, Pereira JS. 2003. Understanding plant responses to drought from genes to the whole plant. Functional Plant Biology 30:239−264

doi: 10.1071/FP02076
[29]

Butcher KR, Nasto MK, Norton JM, Stark JM. 2020. Physical mechanisms for soil moisture effects on microbial carbon-use efficiency in a sandy loam soil in the western United States. Soil Biology and Biochemistry 150:107969

doi: 10.1016/j.soilbio.2020.107969
[30]

Moslemi A, Ades PK, Groom T, Nicolas ME, Taylor PWJ. 2018. Influence of waterlogging on growth of pyrethrum plants infected by the crown and root rot pathogens, Fusarium oxysporum, Fusarium avenaceum and Paraphoma vinacea. Australasian Plant Pathology 47:205−213

doi: 10.1007/s13313-018-0547-y
[31]

Qiao M, Hong C, Jiao Y, Hou S, Gao H. 2024. Impacts of drought on photosynthesis in major food crops and the related mechanisms of plant responses to drought. Plants 13:1808

doi: 10.3390/plants13131808
[32]

Riaz MU, Ayub MA, Khalid H, ul Haq MA, Rasul A, et al. 2020. Fate of micronutrients in alkaline soils. In Resources use efficiency in agriculture, eds. Kumar S, Meena RS, Jhariya MK. Singapore: Springer. pp. 577−613 doi: 10.1007/978-981-15-6953-1_16

[33]

Gao X, Berhe AA, Hu Y, Du L, Hou F, et al. 2023. Role of soil organic matter composition and microbial communities on SOC stability: insights from particle-size aggregates. Journal of Soils and Sediments 23:2878−2891

doi: 10.1007/s11368-023-03528-5
[34]

Gardiner B, Berry P, Moulia B. 2016. Wind impacts on plant growth, mechanics and damage. Plant Science 245:94−118

doi: 10.1016/j.plantsci.2016.01.006
[35]

Sillett SC, Van Pelt R. 2007. Trunk reiteration promotes epiphytes and water storage in an old‐growth redwood forest canopy. Ecological Monographs 77:335−359

doi: 10.1890/06-0994.1
[36]

Shabala S, Pottosin I. 2014. Regulation of potassium transport in plants under hostile conditions: implications for abiotic and biotic stress tolerance. Physiologia Plantarum 151:257−279

doi: 10.1111/ppl.12165
[37]

Wolf S. 2017. Plant cell wall signalling and receptor-like kinases. Biochemical Journal 474:471−492

doi: 10.1042/BCJ20160238
[38]

Diop M, Chirinda N, Beniaich A, El Gharous M, El Mejahed K. 2022. Soil and water conservation in Africa: State of play and potential role in tackling soil degradation and building soil health in agricultural lands. Sustainability 14:13425

doi: 10.3390/su142013425
[39]

Van Dung T, Ngoc NP, Van Dang L, Hung NN. 2022. Impact of cover crop and mulching on soil physical properties and soil nutrients in a citrus orchard. PeerJ 10:e14170

doi: 10.7717/peerj.14170
[40]

Mishra P, Tripathi K. 2013. Soil and water conservation research for land management in India. Indian Journal of Dryland Agricultural Research and Development 28:1−18

[41]

Fahad S, Chavan SB, Chichaghare AR, Uthappa AR, Kumar M, et al. 2022. Agroforestry systems for soil health improvement and maintenance. Sustainability 14:14877

doi: 10.3390/su142214877
[42]

Zhao S, Riaz M. 2024. Plant–soil interactions and nutrient cycling dynamics in tropical rainforests. In Environment, Climate, Plant and Vegetation Growth, eds. Fahad S, Saud S, Nawaz T, Gu L, Ahmad M, et al. Cham: Springer. pp. 229−264 doi: 10.1007/978-3-031-69417-2_8

[43]

Hu A, Huang D, Duan Q, Zhou Y, Liu G, et al. 2023. Cover legumes promote the growth of young rubber trees by increasing organic carbon and organic nitrogen content in the soil. Industrial Crops and Products 197:116640

doi: 10.1016/j.indcrop.2023.116640
[44]

Podwojewski P, Janeau JL, Grellier S, Valentin C, Lorentz S, et al. 2011. Influence of grass soil cover on water runoff and soil detachment under rainfall simulation in a sub-humid South African degraded rangeland. Earth Surface Processes and Landforms 36:911−922

doi: 10.1002/esp.2121
[45]

Ola A, Dodd IC, Quinton JN. 2015. Can we manipulate root system architecture to control soil erosion? Soil 1:603−612

[46]

Meyer N, Bergez JE, Constantin J, Justes E. 2019. Cover crops reduce water drainage in temperate climates: a meta-analysis. Agronomy for Sustainable Development 39:3

doi: 10.1007/s13593-018-0546-y
[47]

Siedt M, Schäffer A, Smith KEC, Nabel M, Roß-Nickoll M, et al. 2021. Comparing straw, compost, and biochar regarding their suitability as agricultural soil amendments to affect soil structure, nutrient leaching, microbial communities, and the fate of pesticides. Science of the Total Environment 751:141607

doi: 10.1016/j.scitotenv.2020.141607
[48]

Kebede E. 2021. Contribution, utilization, and improvement of legumes-driven biological nitrogen fixation in agricultural systems. Frontiers in Sustainable Food Systems 5:767998

doi: 10.3389/fsufs.2021.767998
[49]

Muchane MN, Sileshi GW, Gripenberg S, Jonsson M, Pumariño L, et al. 2020. Agroforestry boosts soil health in the humid and sub-humid tropics: a meta-analysis. Agriculture, Ecosystems & Environment 295:106899

doi: 10.1016/j.agee.2020.106899
[50]

Nygren P, Fernández MP, Harmand J-M, Leblanc HA. 2012. Symbiotic dinitrogen fixation by trees: an underestimated resource in agroforestry systems? Nutrient Cycling in Agroecosystems 94:123−160

doi: 10.1007/s10705-012-9542-9
[51]

Rodríguez L, Suárez JC, Rodriguez W, Artunduaga KJ, Lavelle P. 2021. Agroforestry systems impact soil macroaggregation and enhance carbon storage in Colombian deforested Amazonia. Geoderma 384:114810

doi: 10.1016/j.geoderma.2020.114810
[52]

Widyati E, Nuroniah HS, Tata HL, Mindawati N, Lisnawati Y, et al. 2022. Soil degradation due to conversion from natural to plantation forests in Indonesia. Forests 13:1913

doi: 10.3390/f13111913
[53]

Thomas GV, Krishnakumar V. 2024. Plantation crops and soil health management: an overview. In Soil health management for plantation crops: recent advances and new paradigms, eds. Thomas GV, Krishnakumar V. Singapore: Springer. pp. 1−36 doi: 10.1007/978-981-97-0092-9

[54]

Wang J, Peñuelas J, Shi X, Brearley FQ, Esteban Lucas-Borja M, et al. 2024. Tree species richness improves soil net nitrogen mineralization rates in a young biodiversity-ecosystem function experiment. CATENA 243:108178

doi: 10.1016/j.catena.2024.108178
[55]

Altieri MA, Nicholls CI, Henao A, Lana MA. 2015. Agroecology and the design of climate change-resilient farming systems. Agronomy for Sustainable Development 35:869−890

doi: 10.1007/s13593-015-0285-2
[56]

Günal E, Erdem H, Çelik İ. 2018. Effects of three different biochars amendment on water retention of silty loam and loamy soils. Agricultural Water Management 208:232−244

doi: 10.1016/j.agwat.2018.06.004
[57]

Al-Wabel MI, Hussain Q, Usman ARA, Ahmad M, Abduljabbar A, et al. 2018. Impact of biochar properties on soil conditions and agricultural sustainability: a review. Land Degradation & Development 29:2124−2161

doi: 10.1002/ldr.2829
[58]

Yuan X, Ban G, Luo Y, Wang J, Peng D, et al. 2025. Biochar effects on aggregation and carbon-nitrogen retention in different-sized aggregates of clay and loam soils: A meta-analysis. Soil and Tillage Research 247:106365

doi: 10.1016/j.still.2024.106365
[59]

Qi D, Wu Z, Chen B, Zhang X, Yang C, et al. 2024. Integrative cultivation pattern, distribution, yield and potential benefit of rubber based agroforestry system in China. Industrial Crops and Products 220:119228

doi: 10.1016/j.indcrop.2024.119228
[60]

Li H, Ma Y, Liu W, Liu W. 2012. Soil changes induced by rubber and tea plantation establishment: comparison with tropical rain forest soil in Xishuangbanna, SW China. Environmental Management 50:837−848

[61]

Allan RP, Barlow M, Byrne MP, Cherchi A, Douville H, et al. 2020. Advances in understanding large‐scale responses of the water cycle to climate change. Annals of the New York Academy of Sciences 1472:49−75

doi: 10.1111/nyas.14337
[62]

Yu T, Mahe L, Li Y, Wei X, Deng X, et al. 2022. Benefits of crop rotation on climate resilience and its prospects in China. Agronomy 12:436

doi: 10.3390/agronomy12020436
[63]

Khan MT, Aleinikovienė J, Butkevičienė LM. 2024. Innovative organic fertilizers and cover crops: Perspectives for sustainable agriculture in the era of climate change and organic agriculture. Agronomy 14:2871

doi: 10.3390/agronomy14122871
[64]

Zeng H, Wu J, Singh AK, Zhu X, Zhang W, et al. 2022. Effect of intercrops complexity on water uptake patterns in rubber plantations: Evidence from stable isotopes (C-H-O) analysis. Agriculture, Ecosystems & Environment 338:108086

doi: 10.1016/j.agee.2022.108086
[65]

Maitra S, Hossain A, Brestic M, Skalicky M, Ondrisik P, et al. 2021. Intercropping—A low input agricultural strategy for food and environmental security. Agronomy 11:343

doi: 10.3390/agronomy11020343
[66]

Ali Akbar Nakhli S, Delkash M, Bakhshayesh BE, Kazemian H. 2017. Application of zeolites for sustainable agriculture: a review on water and nutrient retention. Water, Air, & Soil Pollution 228:464

doi: 10.1007/s11270-017-3649-1
[67]

Krishnan A, Joseph L, Roy CB. 2019. An insight into Hevea-Phytophthora interaction: the story of Hevea defense and Phytophthora counter defense mediated through molecular signalling. Current Plant Biology 17:33−41

doi: 10.1016/j.cpb.2018.11.009
[68]

Datta R. 2024. Enzymatic degradation of cellulose in soil: a review. Heliyon 10:e24022

doi: 10.1016/j.heliyon.2024.e24022
[69]

Ding Y, Gao X, Shu D, Siddique KHM, Song X, et al. 2024. Enhancing soil health and nutrient cycling through soil amendments: Improving the synergy of bacteria and fungi. Science of the Total Environment 923:171332

doi: 10.1016/j.scitotenv.2024.171332
[70]

Möhl P, Hiltbrunner E. 2025. Recurrent summer drought temporarily stimulates fine root growth but enhances winter root losses in alpine grassland. Frontiers in Plant Science 16:1625076

doi: 10.3389/fpls.2025.1625076
[71]

Reinsch S, Robinson DA, van Soest MAJ, Keith AM, Parry S, et al. 2024. Temperate soils exposed to drought—key processes, impacts, indicators, and unknowns. Land 13:1759

doi: 10.3390/land13111759
[72]

Pedersen O, Sauter M, Colmer TD, Nakazono M. 2021. Regulation of root adaptive anatomical and morphological traits during low soil oxygen. New Phytologist 229:42−49

doi: 10.1111/nph.16375
[73]

Ali MF, Aziz AA, Sulong SH. 2020. The role of decision support systems in smallholder rubber production: Applications, limitations and future directions. Computers and Electronics in Agriculture 173:105442

doi: 10.1016/j.compag.2020.105442
[74]

Suseela V, Conant RT, Wallenstein MD, Dukes JS. 2012. Effects of soil moisture on the temperature sensitivity of heterotrophic respiration vary seasonally in an old‐field climate change experiment. Global Change Biology 18:336−348

doi: 10.1111/j.1365-2486.2011.02516.x
[75]

Zhang T, Huang Y. 2012. Impacts of climate change and inter-annual variability on cereal crops in China from 1980 to 2008. Journal of the Science of Food and Agriculture 92:1643−1652

doi: 10.1002/jsfa.5523
[76]

An N, Tang CS, Xu SK, Gong XP, Shi B, et al. 2018. Effects of soil characteristics on moisture evaporation. Engineering Geology 239:126−135

doi: 10.1016/j.enggeo.2018.03.028
[77]

Gao Z, Hu X, Li X-Y. 2021. Changes in soil water retention and content during shrub encroachment process in Inner Mongolia, northern China. CATENA 206:105528

doi: 10.1016/j.catena.2021.105528
[78]

Peyrusson F. 2021. Hydrogels improve plant growth in mars analog conditions. Frontiers in Astronomy and Space Sciences 8:729278

doi: 10.3389/fspas.2021.729278
[79]

Ippolito JA, Cui L, Kammann C, Wrage-Mönnig N, Estavillo JM, et al. 2020. Feedstock choice, pyrolysis temperature and type influence biochar characteristics: a comprehensive meta-data analysis review. Biochar 2:421−438

doi: 10.1007/s42773-020-00067-x
[80]

Sun F, Lu S. 2014. Biochars improve aggregate stability, water retention, and pore-space properties of clayey soil. Journal of Plant Nutrition and Soil Science 177:26−33

doi: 10.1002/jpln.201200639
[81]

Krause L, Biesgen D, Treder A, Schweizer SA, Klumpp E, et al. 2019. Initial microaggregate formation: association of microorganisms to montmorillonite-goethite aggregates under wetting and drying cycles. Geoderma 351:250−260

[82]

Farooq M, Hussain M, Ul-Allah S, Siddique KHM. 2019. Physiological and agronomic approaches for improving water-use efficiency in crop plants. Agricultural Water Management 219:95−108

doi: 10.1016/j.agwat.2019.04.010
[83]

Liu P, He J, Li H, Wang Q, Lu C, et al. 2019. Effect of straw retention on crop yield, soil properties, water use efficiency and greenhouse gas emission in China: a meta-analysis. International Journal of Plant Production 13:347−367

doi: 10.1007/s42106-019-00060-w
[84]

Hunsaker DJ, Elshikha DM, Bronson KF. 2019. High guayule rubber production with subsurface drip irrigation in the US desert Southwest. Agricultural Water Management 220:1−12

doi: 10.1016/j.agwat.2019.04.016
[85]

Bodner G, Nakhforoosh A, Kaul HP. 2015. Management of crop water under drought: a review. Agronomy for Sustainable Development 35:401−442

doi: 10.1007/s13593-015-0283-4
[86]

Li H, Mei X, Wang J, Huang F, Hao W, et al. 2021. Drip fertigation significantly increased crop yield, water productivity and nitrogen use efficiency with respect to traditional irrigation and fertilization practices: A meta-analysis in China. Agricultural Water Management 244:106534

doi: 10.1016/j.agwat.2020.106534
[87]

Steffen J, Jensen M, Pomeroy CA, Burian SJ. 2013. Water supply and stormwater management benefits of residential rainwater harvesting in US cities. JAWRA Journal of the American Water Resources Association 49:810−824

doi: 10.1111/jawr.12038
[88]

Ondrasek G, Bakić Begić H, Zovko M, Filipović L, Meriño-Gergichevich C, et al. 2019. Biogeochemistry of soil organic matter in agroecosystems & environmental implications. Science of the Total Environment 658:1559−1573

doi: 10.1016/j.scitotenv.2018.12.243
[89]

Bowles TM, Acosta-Martínez V, Calderón F, Jackson LE. 2014. Soil enzyme activities, microbial communities, and carbon and nitrogen availability in organic agroecosystems across an intensively-managed agricultural landscape. Soil Biology and Biochemistry 68:252−262

doi: 10.1016/j.soilbio.2013.10.004
[90]

Ren K, Xu M, Li R, Zheng L, Liu S, et al. 2022. Optimizing nitrogen fertilizer use for more grain and less pollution. Journal of Cleaner Production 360:132180

doi: 10.1016/j.jclepro.2022.132180
[91]

Myrold DD, Zeglin LH, Jansson JK. 2014. The potential of metagenomic approaches for understanding soil microbial processes. Soil Science Society of America Journal 78:3−10

doi: 10.2136/sssaj2013.07.0287dgs
[92]

Dong L, Berg B, Gu W, Wang Z, Sun T. 2022. Effects of different forms of nitrogen addition on microbial extracellular enzyme activity in temperate grassland soil. Ecological Processes 11:36

doi: 10.1186/s13717-022-00380-2
[93]

Shehzad K, Tu S, Majeed MZ, Lei B, Zhang J. 2024. Arthropods in soil reclamation and bioremediation: Functional roles, mechanisms and future perspective. Journal of Environmental Management 370:122820

doi: 10.1016/j.jenvman.2024.122820
[94]

Baumhardt RL, Stewart BA, Sainju UM. 2015. North American soil degradation: Processes, practices, and mitigating strategies. Sustainability 7:2936−2960

doi: 10.3390/su7032936
[95]

Scavo A, Fontanazza S, Restuccia A, Pesce GR, Abbate C, et al. 2022. The role of cover crops in improving soil fertility and plant nutritional status in temperate climates. A review. Agronomy for Sustainable Development 42:93

doi: 10.1007/s13593-022-00825-0
[96]

de Paul Obade V, Lal R. 2013. Assessing land cover and soil quality by remote sensing and geographical information systems (GIS). CATENA 104:77−92

doi: 10.1016/j.catena.2012.10.014
[97]

Wydro U. 2022. Soil microbiome study based on DNA extraction: a review. Water 14:3999

doi: 10.3390/w14243999
[98]

Demattê JAM, Morgan CLS, Chabrillat S, Rizzo R, Franceschini MHD, et al. 2024. Spectral sensing from ground to space in soil science: state of the art, applications, potential, and perspectives. In Remote Sensing Handbook, ed. Thenkabail PS. Volume III, 2nd Edition. Boca Raton, FL, USA: CRC Press. pp. 535−644 doi: 10.1201/9781003541165-20

[99]

Zeng Y, Verhoef A, Vereecken H, Ben-Dor E, Veldkamp T, et al. 2025. Monitoring and modeling the soil‐plant system toward understanding soil health. Reviews of Geophysics 63:e2024RG000836

doi: 10.1029/2024RG000836
[100]

Castaldi F, Palombo A, Santini F, Pascucci S, Pignatti S, et al. 2016. Evaluation of the potential of the current and forthcoming multispectral and hyperspectral imagers to estimate soil texture and organic carbon. Remote Sensing of Environment 179:54−65

doi: 10.1016/j.rse.2016.03.025
[101]

Zhu AX, Hudson B, Burt J, Lubich K, Simonson D. 2001. Soil mapping using GIS, expert knowledge, and fuzzy logic. Soil Science Society of America Journal 65:1463−1472

doi: 10.2136/sssaj2001.6551463x
[102]

Wang J, Zhen J, Hu W, Chen S, Lizaga I, et al. 2023. Remote sensing of soil degradation: Progress and perspective. International Soil and Water Conservation Research 11:429−454

doi: 10.1016/j.iswcr.2023.03.002
[103]

Dvorakova K, Heiden U, Pepers K, Staats G, van Os G, et al. 2023. Improving soil organic carbon predictions from a Sentinel–2 soil composite by assessing surface conditions and uncertainties. Geoderma 429:116128

doi: 10.1016/j.geoderma.2022.116128
[104]

Lahlali R, Ibrahim DSS, Belabess Z, Kadir Roni MZ, Radouane N, et al. 2021. High-throughput molecular technologies for unraveling the mystery of soil microbial community: challenges and future prospects. Heliyon 7:e08142

doi: 10.1016/j.heliyon.2021.e08142
[105]

Acosta-Martinez V, Cano A, Johnson J. 2018. Simultaneous determination of multiple soil enzyme activities for soil health-biogeochemical indices. Applied Soil Ecology 126:121−128

doi: 10.1016/j.apsoil.2017.11.024
[106]

Strauss V, Paul C, Dönmez C, Löbmann M, Helming K. 2023. Sustainable soil management measures: a synthesis of stakeholder recommendations. Agronomy for Sustainable Development 43:17

doi: 10.1007/s13593-022-00864-7