Rice Science ›› 2024, Vol. 31 ›› Issue (4): 417-433.DOI: 10.1016/j.rsci.2024.04.006
收稿日期:
2023-12-25
接受日期:
2024-04-07
出版日期:
2024-07-28
发布日期:
2024-08-08
. [J]. Rice Science, 2024, 31(4): 417-433.
[1] | Abbas R N, Iqbal A, Iqbal M A, Ali O M, Ahmed R, Ijaz R, Hadifa A, Bethune B J. 2021. Weed-free durations and fertilization regimes boost nutrient uptake and paddy yield of direct-seeded fine rice (Oryza sativa L.). Agronomy, 11(12): 2448. |
[2] | Ahmar S, Gill R A, Jung K H, Faheem A, Qasim M U, Mubeen M, Zhou W J. 2020. Conventional and molecular techniques from simple breeding to speed breeding in crop plants: Recent advances and future outlook. Int J Mol Sci, 21(7): 2590. |
[3] | Alam M K, Bell R W, Hasanuzzaman M, Salahin N, Rashid M H, Akter N, Akhter S, Islam M S, Islam S, Naznin S, Anik M F A, Apu M M R B, Bin Saif H, Alam M J, Khatun M F. 2020. Rice (Oryza sativa L.) establishment techniques and their implications for soil properties, global warming potential mitigation and crop yields. Agronomy, 10(6): 888. |
[4] | Anilkumar C, Sunitha N C, Harikrishna, Devate N B, Ramesh S. 2022. Advances in integrated genomic selection for rapid genetic gain in crop improvement: A review. Planta, 256(5): 87. |
[5] | Ashikari M, Sakakibara H, Lin S Y, Yamamoto T, Takashi T, Nishimura A, Angeles E R, Qian Q, Kitano H, Matsuoka M. 2005. Cytokinin oxidase regulates rice grain production. Science, 309(5735): 741-745. |
[6] | Bairwa R K, Dhaka B L, Nagar B L, Mahajani K. 2019. On farm assessment of direct seeded rice (DSR) technology in humid south-eastern plain of Rajasthan, India. Int J Curr Microbiol App Sci, 8(7): 2492-2498. |
[7] | Bharamappanavara M, Siddaiah A M, Ponnuvel S, Ramappa L, Patil B, Appaiah M, Maganti S M, Sundaram R M, Shankarappa S K, Tuti M D, Banugu S, Parmar B, Rathod S, Barbadikar K M, Kota S, Subbarao L V, Mondal T K, Channappa G. 2020. Mapping QTL hotspots associated with weed competitive traits in backcross population derived from Oryza sativa L. and O. glaberrima Steud. Sci Rep, 10(1): 22103. |
[8] | Bharamappanavara M, Madhyavenkatapura A S, Appaiah M C, Patil B S, Vijjeswarapu A, Senguttuvel P, Madhav M S, Rathod S, Mondal T K, Ramappa L, Mathada U R, Sundaram R M, Palakolanu S, Parmer B, Rapolu M K, Rao L V S, Gireesh C. 2023. Genetic analysis of early seedling vigour in Oryza glaberrima accessions under laboratory and direct-seeded rice conditions. Cereal Res Commun, 51(4): 991-1002. |
[9] | Bhatt R, Singh P. 2022. Farmer’s field evaluation of direct seeded rice vis-à-vis puddled transplanted rice in Kapurthala, Punjab. Indian J Ext Educ, 58(2): 42-46. |
[10] | Bhushan L, Ladha J K, Gupta R K, Singh S, Tirol-Padre A, Saharawat Y S, Gathala M, Pathak H. 2007. Saving of water and labor in a rice-wheat system with no-tillage and direct seeding technologies. Agron J, 99(5): 1288-1296. |
[11] | Bortesi L, Fischer R. 2015. The CRISPR/Cas9 system for plant genome editing and beyond. Biotechnol Adv, 33(1): 41-52. |
[12] | Cabangon R J, Tuong T P, Abdullah N B. 2002. Comparing water input and water productivity of transplanted and direct-seeded rice production systems. Agric Water Manag, 57(1): 11-31. |
[13] | Chakraborty D, Ladha J K, Rana D S, Jat M L, Gathala M K, Yadav S, Rao A N, Ramesha M S, Raman A. 2017. A global analysis of alternative tillage and crop establishment practices for economically and environmentally efficient rice production. Sci Rep, 7(1): 9342. |
[14] | Chataut G, Bhatta B, Joshi D, Subedi K, Kafle K. 2023. Greenhouse gases emission from agricultural soil: A review. J Agric Food Res, 11: 100533. |
[15] | Chatterjee B S. Maiti S. 1981. Principles and Practices of Rice Growing. London, UK: Oxford and IBM Publishing Co.: 40-47. |
[16] | Chaudhary A, Venkatramanan V, Kumar Mishra A, Sharma S. 2023. Agronomic and environmental determinants of direct seeded rice in South Asia. Circ Econ Sustain, 3(1): 253-290. |
[17] | Chauhan B S. 2012. Weed ecology and weed management strategies for dry-seeded rice in Asia. Weed Technol, 26(1): 1-13. |
[18] | Chauhan B S, Mahajan G, Sardana V, Timsina J, Jat M L. 2012. Productivity and sustainability of the rice-wheat cropping system in the Indo-Gangetic Plains of the Indian subcontinent: Problems, opportunities, and strategies. Adv Agron, 117: 315-369. |
[19] | Dawe D. 2005. Increasing water productivity in rice-based systems in Asia: Past trends, current problems, and future prospects. Plant Prod Sci, 8(3): 221-230. |
[20] | Devkota K P, Sudhir-Yadav, Khanda C M, Beebout S J, Mohapatra B K, Singleton G R, Puskur R. 2020. Assessing alternative crop establishment methods with a sustainability lens in rice production systems of Eastern India. J Clean Prod, 244: 118835. |
[21] | Devkota M, Devkota K P, Acharya S, McDonald A J. 2019. Increasing profitability, yields and yield stability through sustainable crop establishment practices in the rice-wheat systems of Nepal. Agric Syst, 173: 414-423. |
[22] | Dhakal R, Bhandari S, Joshi B, Aryal A, Kattel R R, Dhakal S C. 2019. Cost-benefit analysis and resource use efficiency of rice production system in different agriculture landscapes in Chitwan district, Nepal. Arch Agric Environ Sci, 4(4): 442-448. |
[23] | Dhaliwal J, Kahlon M S, Kukal S S. 2021. Deep tillage and irrigation impacts on crop performance of direct seeded rice-wheat cropping system in north-west India. Paddy Water Environ, 19(1): 113-126. |
[24] | Dhaliwal S S, Sharma S, Shukla A K, Sharma V, Bhullar M S, Dhaliwal T K, Alorabi M, Alotaibi S S, Gaber A, Hossain A. 2021. Removal of biomass and nutrients by weeds and direct- seeded rice under conservation agriculture in light-textured soils of north-western India. Plants, 10(11): 2431. |
[25] | Dingkuhn M. 1996. Modelling concepts for the phenotypic plasticity of dry matter and nitrogen partitioning in rice. Agric Syst, 52(2/3): 383-397. |
[26] | Dingkuhn M, Schnier H F, De Datta S K, Wijangco E, Dörffling K. 1990. Diurnal and developmental changes in canopy gas exchange in relation to growth in transplanted and direct-seeded flooded rice. Aust J Plant Physiol, 17(2): 119-134. |
[27] | Dreher K, Morris M, Khairallah M, Ribaut J M, Pandey S, Srinivasan G. 2002. Is marker-assisted selection cost-effective compared with conventional plant breeding methods? The case of quality protein Maize. In: Economic and Social Issues in Agricultural Biotechnology. Wallingford, UK: CABI Publishing: 203-236. |
[28] | Fahad S, Bajwa A A, Nazir U, Anjum S A, Farooq A, Zohaib A, Sadia S, Nasim W, Adkins S, Saud S, Ihsan M Z, Alharby H, Wu C, Wang D P, Huang J L. 2017. Crop production under drought and heat stress: Plant responses and management options. Front Plant Sci, 8: 1147. |
[29] | Farheen M, Murthy K G K, Mohan Y C, Kumar J H. 2023. Studies on correlation and path analysis for yield and morpho- physiological traits in elite rice (Oryza sativa L.) genotypes under dry DSR system. Int J Biol Resour Stress Manag, 14: 546-553. |
[30] | Farooq M, Basra S M A, Asad S A. 2008. Comparison of conventional puddling and dry tillage in rice-wheat system. Paddy Water Environ, 6(4): 397-404. |
[31] | Farooq M, Siddique K H M, Rehman H, Aziz T, Lee D J, Wahid A. 2011. Rice direct seeding: Experiences, challenges and opportunities. Soil Tillage Res, 111(2): 87-98. |
[32] | Fauzi A R, Junaedi A, Lubis I, Ghulamahdi M, Aswidinnoor H, Sakagami J I. 2022. Evaluation of rice genotypes on seed attributes and agronomic performance for developing direct-seeded cultivar. AIMS Agric Food, 7(1): 1-21. |
[33] | Fenangad D B, Orge R F. 2015. Simple seed coating technology for improved seedling establishment in direct-seeded rice. Int J Sustain Dev, 8(11): 35-42. |
[34] | Feng J F, Chen C Q, Zhang Y, Song Z W, Deng A X, Zheng C Y, Zhang W J. 2013. Impacts of cropping practices on yield-scaled greenhouse gas emissions from rice fields in China: A meta-analysis. Agric Ecosyst Environ, 164: 220-228. |
[35] | Fukagawa N K, Ziska L H. 2019. Rice: Importance for global nutrition. J Nutr Sci Vitaminol, 65: S2-S3. |
[36] | Gandhi R V, Rudresh N S, Murudaiah S, Hittalmani S. 2012. Performance and adoption of new aerobic rice variety MAS 946-1 (Sharada) in southern Karnataka. J Agric Sci, 25(1): 5-8. |
[37] | Grover N, Kumar A, Yadav A K, Gopala Krishnan S, Ellur R K, Bhowmick P K, Vinod K K, Bollinedi H, Nagarajan M, Viswanathan C, Sevanthi A M V, Singh N K, Mohapatra T, Singh A K. 2020. Marker assisted development and characterization of herbicide tolerant near isogenic lines of a mega basmati rice variety, “Pusa basmati 1121”. Rice, 13(1): 68. |
[38] | Guimaraes E P. 2000. Current status of high-yielding aerobic rice in Brazil. In: Proceedings of the Aerobic Rice Workshop. 7-8 September 2000. Los Banos, the Philippines. |
[39] | Gupta D K, Bhatia A, Kumar A, Das T K, Jain N, Tomer R, Malyan S K, Fagodiya R K, Dubey R, Pathak H. 2016. Mitigation of greenhouse gas emission from rice-wheat system of the Indo-Gangetic Plains: Through tillage, irrigation and fertilizer management. Agric Ecosyst Environ, 230: 1-9. |
[40] | Gupta K, Kumar R, Baruah K K, Hazarika S, Karmakar S, Bordoloi N. 2021. Greenhouse gas emission from rice fields: A review from Indian context. Environ Sci Pollut Res, 28(24): 30551-30572. |
[41] | Hang X N, Zhang X, Song C L, Jiang Y, Deng A X, He R Y, Lu M, Zhang W J. 2014. Differences in rice yield and CH4 and N2O emissions among mechanical planting methods with straw incorporation in Jianghuai area, China. Soil Tillage Res, 144: 205-210. |
[42] | Harada H, Kobayashi H, Shindo H. 2007. Reduction in greenhouse gas emissions by no-tilling rice cultivation in Hachirogata polder, northern Japan: Life-cycle inventory analysis. Soil Sci Plant Nutr, 53(5): 668-677. |
[43] | IPCC. 2007. Summary for Policymakers. In: Metz B, Davidson O R, Bosch P R, Dave R, Meyer L A. Climate Change 2007: Mitigation. Contribution of Working Group III to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge, United Kingdom: Cambridge University. |
[44] | IPCC. 2013. Climate system scenario tables. In: Prather M, Flato G, Friedlingstein P, Jones C, Lamarque J F, Liao H, Rasch P. Climate Change 2013: The Physical Science Basis. Cambridge, UK: Cambridge University Press. |
[45] | Jat M L, Gathala M K, Ladha J K, Saharawat Y S, Jat A S, Kumar V, Sharma S K, Kumar V, Gupta R. 2009. Evaluation of precision land leveling and double zero-till systems in the rice-wheat rotation: Water use, productivity, profitability and soil physical properties. Soil Tillage Res, 105(1): 112-121. |
[46] | Jat R K, Meena V S, Kumar M, Jakkula V S, Reddy I R, Pandey A C. 2022. Direct seeded rice: Strategies to improve crop resilience and food security under adverse climatic conditions. Land, 11(3): 382. |
[47] | Kakumanu K R, Kotapati G R, Nagothu U S, Kuppanan P, Kallam S R. 2019. Adaptation to climate change and variability: A case of direct seeded rice in Andhra Pradesh, India. J Water Clim Change, 10(2): 419-430. |
[48] | Kalita J, Ahmed P, Baruah N. 2020. Puddling and its effect on soil physical properties and growth of rice and post rice crops: A review. J Pharmacogn Phytochem, 9(4): 503-510. |
[49] | Kaur J, Singh A. 2017. Direct seeded rice: Prospects, problems/ constraints and researchable issues in India. Curr Agri Res Jour, 5(1): 13-32. |
[50] | Kaur R, Singh K, Deol J S, Dass A, Choudhary A K. 2015. Possibilities of improving performance of direct seeded rice using plant growth regulators: A review. Proc Natl Acad Sci Indian Sect B Biol Sci, 85(4): 909-922. |
[51] | Kaur R, Bedi S, Mahajan G, Kaur G, Chauhan B S. 2016. Physiological and biochemical indicators for assessing nitrogen- use efficiency in rice (Oryza sativa) genotypes under dry direct seeding. Crop Pasture Sci, 67(11): 1158-1167. |
[52] | Ko J Y, Kang H W. 2000. The effects of cultural practices on methane emission from rice fields. Nutr Cycl Agroecosyst, 58: 311-314. |
[53] | Kumar A, Ram L, Singh R, Singh B. 2019. Impact of crop establishment methods on rice insect pests incidence in Indo Gangetic Plain (IGP). Indian J Agr Sci, 89(3): 475-481. |
[54] | Kumar N, Chhokar R S, Meena R P, Kharub A S, Gill S C, Tripathi S C, Gupta O P, Mangrauthia S K, Sundaram R M, Sawant C P, Gupta A, Naorem A, Kumar M, Singh G P. 2022. Challenges and opportunities in productivity and sustainability of rice cultivation system: A critical review in Indian perspective. Cereal Res Commun, 50(4): 573-601. |
[55] | Kumar V, Ladha J K. 2011. Direct seeding of rice: Recent developments and future research needs. Adv Agron, 111: 297-413. |
[56] | Kumar V, Kim S H, Adnan M R, Heo J, Jeong J H, Priatama R A, Lee J J, Kim C M, Je B I, Park S J, Xuan Y H, Han C D. 2021. Tiller outgrowth in rice (Oryza sativa L.) is controlled by OsGT1, which acts downstream of FC1 in a PhyB-independent manner. J Plant Biol, 64(5): 417-430. |
[57] | Kumari S, Kumar R, Kumar R, Kumari A, Pandit A, Shabana. 2020. Effect of zinc levels and moisture regimes on growth and nutrient uptake of direct seeded rice. Int J Chem Stud, 8(2): 120-124. |
[58] | Lee H S, Kang J W, Chung N J, Choi K S, Ahn S N. 2012. Identification of molecular markers for mesocotyl elongation in weedy rice. Kor J Breed Sci, 44(3): 238-244. |
[59] | Lee H S, Sasaki K, Kang J W, Sato T, Song W Y, Ahn S N. 2017. Mesocotyl elongation is essential for seedling emergence under deep-seeding condition in rice. Rice, 10(1): 32. |
[60] | Li C, Yue J, Wu X W, Xu C, Yu J J. 2014. An ABA-responsive DRE-binding protein gene from Setaria italica, SiARDP, the target gene of SiAREB, plays a critical role under drought stress. J Exp Bot, 65(18): 5415-5427. |
[61] | Lin J, Zhu W Y, Zhang Y D, Zhu Z, Zhao L, Chen T, Zhao Q Y, Zhou L H, Fang X W, Wang Y P, Wang C L. 2011. Detection of QTL for cold tolerance at bud bursting stage using chromosome segment substitution lines in rice (Oryza sativa). Rice Sci, 18(1): 71-74. |
[62] | Liu H Y, Hussain S, Zheng M M, Peng S B, Huang J L, Cui K H, Nie L X. 2015. Dry direct-seeded rice as an alternative to transplanted-flooded rice in Central China. Agron Sustain Dev, 35(1): 285-294. |
[63] | Liu H Y, Wang W Q, He A B, Nie L X. 2018. Correlation of leaf and root senescence during ripening in dry seeded and transplanted rice. Rice Sci, 25(5): 279-285. |
[64] | Liu H Y, Zhan J H, Li J L, Lu X, Liu J D, Wang Y M, Zhao Q Z, Ye G Y. 2019. Genome-wide association study (GWAS) for mesocotyl elongation in rice (Oryza sativa L.) under multiple culture conditions. Genes, 11(1): 49. |
[65] | Liu H Y, He A B, Jiang G L, Hussain S, Wang W Q, Sun H J, Jiang M, Nie L X. 2020. Faster leaf senescence after flowering in wet direct-seeded rice was mainly regulated by decrease in cytokinin content as compared with transplanted-flooded rice. Food Energy Secur, 9(4): e232. |
[66] | Liu S W, Zhang Y J, Lin F, Zhang L, Zou J W. 2014. Methane and nitrous oxide emissions from direct-seeded and seedling-transplanted rice paddies in southeast China. Plant Soil, 374(1): 285-297. |
[67] | Liu Y Y, Liu W Y, Geng X Y, Liu B L, Fu X K, Guo L Y, Bai J J, Zhang Q, Geng Y Q, Shao X W. 2022. Direct-seeded rice reduces methane emissions by improving root physiological characteristics through affecting the water status of paddy fields. Rhizosphere, 24: 100628. |
[68] | Maclean J B, Hardy B G. Hettel G. 2013. Rice Almanac: Source Book for One of the Most Important Economic Activities on Earth. Wallingford, UK: CABI Publishing. |
[69] | Mahajan G, Chauhan B S. 2013. The role of cultivars in managing weeds in dry-seeded rice production systems. Crop Prot, 49: 52-57. |
[70] | Mallareddy M, Thirumalaikumar R, Balasubramanian P, Naseeruddin R, Nithya N, Mariadoss A, Eazhilkrishna N, Choudhary A K, Deiveegan M, Subramanian E, Padmaja B, Vijayakumar S. 2023. Maximizing water use efficiency in rice farming: A comprehensive review of innovative irrigation management technologies. Water, 15(10): 1802. |
[71] | Matloob A, Khaliq A, Chauhan B S. 2015. Weeds of direct-seeded rice in Asia: Problems and opportunities. In: Advances in Agronomy. Amsterdam, Netherlands: Elsevier: 291-336. |
[72] | Mboyerwa P A, Kibret K, Mtakwa P, Aschalew A. 2022. Greenhouse gas emissions in irrigated paddy rice as influenced by crop management practices and nitrogen fertilization rates in eastern Tanzania. Front Sustain Food Syst, 6: 868479. |
[73] | Meuwissen T H, Hayes B J, Goddard M E. 2001. Prediction of total genetic value using genome-wide dense marker maps. Genetics, 157(4): 1819-1829. |
[74] | Mohidem N A, Hashim N, Shamsudin R, Che Man H. 2022. Rice for food security: Revisiting its production, diversity, rice milling process and nutrient content. Agriculture, 12(6): 741. |
[75] | Munda S, Saha S, Adak T. 2019. Seeding rate and herbicides suppress weeds and affect the relative performance of rice (Oryza sativa) varieties in dry direct-sown conditions in eastern India. Indian J Agron, 64(1): 48-53. |
[76] | Nakaya A, Isobe S N. 2012. Will genomic selection be a practical method for plant breeding? Ann Bot, 110(6): 1303-1316. |
[77] | Naz S, Nandan R, Roy D K. 2020. Effect of crop establishment methods and weed management practices on productivity, economics and nutrient uptake in direct seeded rice (Oryza sativa L.). Int J Curr Microbiol App Sci, 9(2): 3002-3009. |
[78] | Netscher C, Erlan. 1993. A root-knot nematode, Meloidogyne cf graminicola, parasitic on rice in Indonesia. Afro-Asian J Nematol, 3(1): 90-95. |
[79] | Panda S, Majhi P K, Anandan A, Mahender A, Veludandi S, Bastia D, Guttala S B, Singh S K, Saha S, Ali J. 2021. Proofing direct-seeded rice with better root plasticity and architecture. Int J Mol Sci, 22(11): 6058. |
[80] | Pandey S, Velasco L. 2002. Economics of direct seeding in Asia: Patterns of adoption and research priorities. In: Direct Seeding: Research Strategies and Opportunities. Los Banos, the Philippines: International Rice Research Institute: 3-14. |
[81] | Panneerselvam P, Kumar V, Banik N C, Kumar V, Parida N, Wasim I, Das A, Pattnaik S, Roul P K, Sarangi D R, Sagwal P K, Craufurd P, Balwinder-Singh, Yadav A, Malik R K, Singh S, McDonald A J. 2020. Transforming labor requirement, crop yield, and profitability with precision dry-direct seeding of rice and integrated weed management in Eastern India. Field Crops Res, 259: 107961. |
[82] | Park J H, Lee B W. 2003. Genotypic difference in leaf senescence during grain filling and its relation to grain yield of rice. Kor J Crop Sci, 48(3): 216-223. |
[83] | Pathak H, Sankhyan S, Dubey D S, Bhatia A, Jain N. 2013. Dry direct-seeding of rice for mitigating greenhouse gas emission: Field experimentation and simulation. Paddy Water Environ, 11(1): 593-601. |
[84] | Prasad J S, Somasekhar N, Varaprasad K S. 2010. Nematode infestation in Paddy. In: Nematode Infestations: Food Crops. Prayagraj, India: National Academy of Science: 17-71. |
[85] | Prasad R. 2011. erobic rice systems. In: Sparks D L. Advances in Agronomy. Cambridge, MA, USA: Academic Press: 207-247. |
[86] | Prot J C, Villanueva L M, Gergon E B. 1994. The potential of increased nitrogen supply to mitigate growth and yield reductions of upland rice cultivar UPL Ri-5 caused by Meloidogyne graminicola. Fundam Appl Nematol, 17(5): 445-454. |
[87] | Qian H Y, Zhu X C, Huang S, Linquist B, Kuzyakov Y, Wassmann R, Minamikawa K, Martinez-Eixarch M, Yan X Y, Zhou F, Sander B O, Zhang W J, Shang Z Y, Zou J W, Zheng X H, Li G H, Liu Z H, Wang S H, Ding Y F, van Groenigen K J, Jiang Y. 2023. Greenhouse gas emissions and mitigation in rice agriculture. Nat Rev Earth Environ, 4: 716-732. |
[88] | Quinones C, Mattes N, Faronilo J, Sudhir-Yadav, Jagadish K S V. 2017. Drought stress reduces grain yield by altering floral meristem development and sink size under dry-seeded rice cultivation. Crop Sci, 57(4): 2098-2108. |
[89] | Rajendran S, Park H, Kim J, Park S J, Shin D, Lee J H, Song Y H, Paek N C, Kim C M. 2023. Methane emission from rice fields: necessity for molecular approach for mitigation. Rice Sci, 31(2): 159-178. |
[90] | Rao A N, Johnson D E, Sivaprasad B, Ladha J K, Mortimer A M. 2007. Weed management in direct-seeded rice. Adv Agron, 93: 153-255. |
[91] | Rashid M H, Alam M M, Khan M A H, Ladha J K. 2009. Productivity and resource use of direct-(drum)-seeded and transplanted rice in puddled soils in rice-rice and rice-wheat ecosystems. Field Crops Res, 113(3): 274-281. |
[92] | Rathika S, Ramesh T, Shanmugapriya P. 2020. Weed management in direct seeded rice: A review. Int J Chem Stud, 8(4): 925-933. |
[93] | Rehman H U, Kamran M, Basra S M A, Afzal I, Farooq M. 2015. Influence of seed priming on performance and water productivity of direct seeded rice in alternating wetting and drying. Rice Sci, 22(4): 189-196. |
[94] | Ricroch A, Clairand P, Harwood W. 2017. Use of CRISPR systems in plant genome editing: Toward new opportunities in agriculture. Emerg Top Life Sci, 1(2): 169-182. |
[95] | Saharawat Y S, Singh B, Malik R K, Ladha J K, Gathala M, Jat M L, Kumar V. 2010. Evaluation of alternative tillage and crop establishment methods in a rice-wheat rotation in North Western IGP. Field Crops Res, 116(3): 260-267. |
[96] | Sandhu N, Jain S, Kumar A, Mehla B S, Jain R. 2013. Genetic variation, linkage mapping of QTL and correlation studies for yield, root, and agronomic traits for aerobic adaptation. BMC Genet, 14: 104. |
[97] | Sandhu N, Torres R O, Sta Cruz M T, Maturan P C, Jain R, Kumar A, Henry A. 2015. Traits and QTLs for development of dry direct-seeded rainfed rice varieties. J Exp Bot, 66(1): 225-244. |
[98] | Sandhu N, Raman K A, Torres R O, Audebert A, Dardou A, Kumar A, Henry A. 2016. Rice root architectural plasticity traits and genetic regions for adaptability to variable cultivation and stress conditions. Plant Physiol, 171(4): 2562-2576. |
[99] | Sandhu N, Subedi S R, Singh V K, Sinha P, Kumar S, Singh S P, Ghimire S K, Pandey M, Yadaw R B, Varshney R K, Kumar A. 2019a. Deciphering the genetic basis of root morphology, nutrient uptake, yield, and yield-related traits in rice under dry direct-seeded cultivation systems. Sci Rep, 9: 9334. |
[100] | Sandhu N, Yadaw R B, Chaudhary B, Prasai H, Iftekharuddaula K, Venkateshwarlu C, Annamalai A, Xangsayasane P, Battan K R, Ram M, Cruz M T S, Pablico P, Maturan P C, Raman K A, Catolos M, Kumar A. 2019b. Evaluating the performance of rice genotypes for improving yield and adaptability under direct seeded aerobic cultivation conditions. Front Plant Sci, 10: 159. |
[101] | Sandhu N, Yadav S, Catolos M, Cruz M T S, Kumar A. 2021a. Developing climate-resilient, direct-seeded, adapted multiple- stress-tolerant rice applying genomics-assisted breeding. Front Plant Sci, 12: 637488. |
[102] | Sandhu N, Yadav S, Singh V K, Kumar A. 2021b. Effective crop management and modern breeding strategies to ensure higher crop productivity under direct seeded rice cultivation system: A review. Agronomy, 11(7): 1264. |
[103] | Sato T, Maruyama S. 2002. Seedling emergence and establishment under drained conditions in rice direct-sown into puddled and leveled soil: Effect of calcium peroxide seed coating and sowing depth. Plant Prod Sci, 5(1): 71-76. |
[104] | Sen S, Kaur R, Das T K. 2020. Weed management in dry direct-seeded rice: Assessing the impacts on weeds and crop. Ind Jour Weed Scie, 52(2): 169. |
[105] | Shrestha M, Baral B, Dulal P R. 2021. A review on weed in direct-seeded rice (dsr). Sust Food Agr, 2(2): 99-104. |
[106] | Singh A, Nandal D P, Punia S S, Malik P. 2018. Integrated weed management in direct seeded rice in Trans Indo-Gangetic Plains of India: A review. J Appl Nat Sci, 10(2): 779-790. |
[107] | Singh U M, Yadav S, Dixit S, Ramayya P J, Devi M N, Raman K A, Kumar A. 2017. QTL hotspots for early vigor and related traits under dry direct-seeded system in rice (Oryza sativa L.). Front Plant Sci, 8: 286. |
[108] | Singh V K, Gautam P, Nanda G, Dhaliwal S S, Pramanick B, Meena S S, Alsanie W F, Gaber A, Sayed S, Hossain A. 2021. Soil test based fertilizer application improves productivity, profitability and nutrient use efficiency of rice (Oryza sativa L.) under direct seeded condition. Agronomy, 11(9): 1756. |
[109] | Singh Y, Singh V P, Singh G, Yadav D S, Sinha R K P, Johnson D E, Mortimer A M. 2011. The implications of land preparation, crop establishment method and weed management on rice yield variation in the rice-wheat system in the Indo-Gangetic plains. Field Crops Res, 121(1): 64-74. |
[110] | Statista. 2024. Agriculture emissions worldwide-statistics & facts. [2024-07-19]. https://www.statista.com/topics/10348/agriculture-emissions-worldwide/. |
[111] | Subedi S R, Sandhu N, Singh V K, Sinha P, Kumar S, Singh S P, Ghimire S K, Pandey M, Yadaw R B, Varshney R K, Kumar A. 2019. Genome-wide association study reveals significant genomic regions for improving yield, adaptability of rice under dry direct seeded cultivation condition. BMC Genomics, 20(1): 471. |
[112] | Sulaiman R V, Chuluunbaatar D, Vishnu S. 2018. Upscaling Climate Smart Agriculture: Lessons for Extension and Advisory Services. Rome, Italy: FAO. |
[113] | Suralta R R, Kano-Nakata M, Niones J M, Inukai Y, Kameoka E, Tran T T, Menge D, Mitsuya S, Yamauchi A. 2018. Root plasticity for maintenance of productivity under abiotic stressed soil environments in rice: Progress and prospects. Field Crops Res, 220: 57-66. |
[114] | Susilawati H L, Setyanto P, Kartikawati R, Sutriadi M T. 2019. The opportunity of direct seeding to mitigate greenhouse gas emission from paddy rice field. IOP Conf Ser: Earth Environ Sci, 393(1): 012042. |
[115] | Tabbal D F, Bouman B A M, Bhuiyan S I, Sibayan E B, Sattar M A. 2002. On-farm strategies for reducing water input in irrigated rice; case studies in the Philippines. Agric Water Manag, 56(2): 93-112. |
[116] | Tang R L, Tang X L, Zhang W J, Duan X J, Li J Y, Yao X. 2023. Economic and ecological sustainability assessments of single mid-season rice systems under different planting modes in hilly areas. Chin J Eco Agric, 31(1): 90-101.(in Chinese with English abstract) |
[117] | Tao Y, Chen Q, Peng S B, Wang W Q, Nie L X. 2016. Lower global warming potential and higher yield of wet direct-seeded rice in Central China. Agron Sustain Dev, 36(2): 24. |
[118] | Tindall K V, Williams B J, Stout M J, Geaghan J P, Leonard B R, Webster E P. 2005. Yield components and quality of rice in response to graminaceous weed density and rice stink bug populations. Crop Prot, 24(11): 991-998. |
[119] | Tomita S, Miyagawa S, Kono Y, Noichana C, Inamura T, Nagata Y, Sributta A, Nawata E. 2003. Rice yield losses by competition with weeds in rainfed paddy fields in north-east Thailand. Weed Biol Manag, 3(3): 162-171. |
[120] | Vishwakarma C, Krishna G K, Kapoor R T, Mathur K, Dalal M, Singh N K, Mohapatra T, Chinnusamy V. 2023. Physiological analysis of source-sink relationship in rice genotypes with contrasting grain yields. Plants, 13(1): 62. |
[121] | Wang D Q, Zhang C D, Wang B, Li B, Wang Q, Liu D, Wang H Y, Zhou Y, Shi L M, Lan F, Wang Y M. 2019. Optimized CRISPR guide RNA design for two high-fidelity Cas9 variants by deep learning. Nat Commun, 10(1): 4284. |
[122] | Wang H M, Xu X M, Zhan X D, Zhai R R, Wu W M, Shen X H, Dai G X, Cao L Y, Cheng S H. 2013. Identification of qRL7, a major quantitative trait locus associated with rice root length in hydroponic conditions. Breed Sci, 63(3): 267-274. |
[123] | Wang Y M, Liu J D, Meng Y, Liu H Y, Liu C, Ye G Y. 2021. Rapid identification of QTL for mesocotyl length in rice through combining QTL-seq and genome-wide association analysis. Front Genet, 12: 713446. |
[124] | Xie X B, Quintana M R, Sandhu N, Subedi S R, Zou Y B, Rutkoski J E, Henry A. 2021. Establishment method affects rice root plasticity in response to drought and its relationship with grain yield stability. J Exp Bot, 72(14): 5208-5220. |
[125] | Yadav D B, Yadav A, Vats A K, Gill G, Malik R K. 2021. Direct seeded rice in sequence with zero-tillage wheat in north-western India: Addressing system-based sustainability issues. SN Appl Sci, 3(11): 844. |
[126] | Yadav S, Kumar V, Singh S, Kumar R M, Sharma S, Tripathi R, Nayak A K, Ladha J K. 2017. Growing rice in eastern India: New paradigms of risk reduction and improving productivity: The future rice strategy for India. Amsterdam, the Netherlands: Elsevier: 221-258. |
[127] | Yuan S, Linquist B A, Wilson L T, Cassman K G, Stuart A M, Pede V, Miro B, Saito K, Agustiani N, Aristya V E, Krisnadi L Y, Zanon A, Heinemann A B, Carracelas G, Subash N, Brahmanand P S, Li T, Peng S B, Grassini P. 2021. Sustainable intensification for a larger global rice bowl. Nat Commun, 12: 7163. |
[128] | Zhang H, Xue Y G, Wang Z Q, Yang J, Zhang J H. 2009. Morphological and physiological traits of roots and their relationships with shoot growth in “super” rice. Field Crops Res, 113(1): 31-40. |
[129] | Zhang X J, Lai Y C, Meng Y, Tang A, Dong W J, Liu Y H, Liu K, Wang L Z, Yang X L, Wang W L, Ding G H, Jiang H, Ren Y, Jiang S K. 2023. Analyses and identifications of quantitative trait loci and candidate genes controlling mesocotyl elongation in rice. J Integr Agric, 22(2): 325-340. |
[130] | Zhang Z, Li R H, Zhao C, Qiang S. 2021. Reduction in weed infestation through integrated depletion of the weed seed bank in a rice-wheat cropping system. Agron Sustain Dev, 41(1): 10. |
No related articles found! |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||