Genetic improvement in wheat carried out by INIFAP from 1985 to 2020

Authors

  • Héctor Eduardo Villaseñor Mir Campo Experimental Valle de México-INIFAP. Carretera Los Reyes-Texcoco km 13.5, Coatlinchán, Texcoco, México. CP. 56250
  • Julio Huerta Espino Campo Experimental Valle de México-INIFAP. Carretera Los Reyes-Texcoco km 13.5, Coatlinchán, Texcoco, México. CP. 56250
  • Ernesto Solís Moya Campo Experimental Bajío-INIFAP. Carretera Celaya-San Miguel de Allende km 6.5, Celaya, Guanajuato
  • María Florencia Rodríguez García Campo Experimental Valle de México-INIFAP. Carretera Los Reyes-Texcoco km 13.5, Coatlinchán, Texcoco, México. CP. 56250
  • Eliel Martínez Cruz Campo Experimental Valle de México-INIFAP. Carretera Los Reyes-Texcoco km 13.5, Coatlinchán, Texcoco, México. CP. 56250
  • Eduardo Espitia Rangel Campo Experimental Valle de México-INIFAP. Carretera Los Reyes-Texcoco km 13.5, Coatlinchán, Texcoco, México. CP. 56250

DOI:

https://doi.org/10.29312/remexca.v12i25.2809

Keywords:

Triticum aestivum L., achievements in genetic improvement, future requirements

Abstract

In Mexico, Genetic improvement made in wheat began in 1944, at the now-called Experimental Field Valle de México, under the command of Dr. Norman E. Borlaug. His research originated the first varieties in 1948, which in the 1950s showed resistance to stem rust and in 1960s reduced plant size and generated varieties that, when sown in Africa, India and Pakistan, launched the ‘Green Revolution’, impacts that awarded Dr. Borlaug with the Nobel Peace Prize. In 1974 three cross breeding and selection programs were differentiated: Northwest, Bajío and the rainfed, the International Maize and Wheat Improvement Center has greater action in the Northwest but supports Bajío and the rainfed. With the creation of the National Institute of Forestry, Agricultural and Livestock Research, they continued their mission to release varieties. Work with andro-sterility began in 1993 and in 2000 a dominant andro-sterile mutant (Oly) was obtained, which has allowed population improvement. Until 2020, 76 years have passed, and 154 generations of recombination have been obtained, ranking the national program among the most dynamic in the world, with the contribution of more than 250 varieties: 140 released by INIFAP, which have been the basis of domestic production, with Cirno C2008 standing out, sown in more than 1.5 million hectares, which generates additional revenue of $6 700 million. The short-term challenges are to increase the production of grain under irrigation conditions and strengthen research for disease control, greater efficiency in water use, drought and heat tolerance and a better quality in grain; in the medium term, control of rusts and increase planting under reduced irrigation; in the long term, increase the rainfed-sown area, reduce losses due to foliar diseases, droughts and heat and release varieties with better nutritional quality.

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References

Borlaug, N. E. 1969. Mejoramiento de trigo, su impacto en el abastecimiento mundial de alimentos. Sobretiro No. 2. Centro Internacional de Maíz y Trigo (CIMMYT). El Batán, Texcoco. Estado de México. 40 p.

FAO. 2020. Food and Agriculture Organization of the United Nations. Crops. Rome, Italy. http://www.fao.org/faostat/en/#data/QC.

Huerta-Espino, J. y Singh, R. 2000. Las royas del trigo. In: el trigo de temporal en México. Villaseñor, M. H. E. y Espitia, E. (Ed.). Chapingo, Estado de México, México, SAGAR, INIFAP, Campo Experimental Valle de México. Libro técnico núm. 1. 231-251 pp.

Huerta-Espino, J.; Singh, R.; Crespo-Herrera, L. A.; Villaseñor-Mir, H. E. Rodríguez-García, M. F.; Dreisigacher, S.; Barcenas-Santana, D. and Lagudah E. 2020. Adult plant slow rusting genes confer high levels of resistance to rust in bread wheat cultivars from Mexico. 11:824. https://doi.org/10.3389/fpls.2020.00824.

Juliana, P.; Singh, R. P.; Huerta-Espino, J.; Bhavani, S.; Randhawa, M. S.; Kumar, U.; Joshi, A. K.; Bhati, P. K.; Villaseñor, M. H. E.; Mishra, Ch. N. and Singh, G. P. 2020. Genome-wide mapping and allelic fingerprinting provide insights into the genetics of resistance to wheat stripe rust in India, Kenya and Mexico. Sci. Rep. 10:10908. https://doi.org/10.1038/ s41598-020-67874-x.

Paquini-Rodríguez, S. L.; Benítez-Riquelme, I.; Villaseñor-Mir, H. E.; Muñoz-Orozco, A. y Vaquera-Huerta, H. 2016. Incremento en el rendimiento y sus components bajo riego normal y restringido de variedades mexicanas de trigo. Rev. Fitotec. Mex. 39(4):367-378.

Rajaram, S. 1995. Wheat germoplasm improvement: historical perspectives, philosophy, objectives, and missions. In: wheat breeding at CIMMYT: commemorating 50 years of research in Mexico for global wheat improvement. Rajaram, S. G. and Hettel P. (Ed.). Wheat Special Report No. 29. México, DF. Centro Internacional de Maíz y Trigo (CIMMYT). 1-10 pp.

Rajaram, S.; Singh, R. P. and Torres, E. 1988. Current CIMMYT approaches in breeding wheat for rust resistance. In: breeding strategies for resistance to the rust of wheat. Simmonds, N. W. Rajaram, S. (Ed.). México, DF. Centro Internacional de Maíz y Trigo (CIMMYT). 101-118 pp.

SIAP. 2019. Servicio de Información Agroalimentaria y Pesquera. Producción Agroalimentaria y Pesquera. https://www.gob.mx/siap/.

Villarreal, R. L. 1995. Expanding the genetic base of CIMMYT bread wheat germoplasm. In: wheat breeding at CIMMYT: commemorating 50 years of research in Mexico for global wheat improvement. Rajaram, S. and Hettel, G. P. (Ed.). Wheat Special Report No. 29. México, DF. Centro Internacional de Maíz y Trigo (CIMMYT). 16-21 pp.

Villaseñor, M, H. E.; Castillo, G. F.; Espitia, R. E.; Rajaram, S. y Molina, G. J. D. 2002. Perspectivas del uso de la androesterilidad en el mejoramiento por selección recurrente de trigo en México. Rev. Fitotec. Mex. 25(3):321-326.

Villaseñor, M. H. E.; Huerta, E. J.; Pérez, H. P.; Rodríguez, G. M. F.; Martínez, C. E.; Hortelano, S. R. R. y Espitia, R. E. 2009. La investigación de trigo en el Campo Experimental Valle de México: historia y aportaciones. Reseña histórica 66 años al servicio de México 1943-2009. Pub. Esp. 1:29-31.

Villaseñor, M. H. E.; Hortelano, S. R. R.; Martínez, C. E.; Huerta, E. J.; García, L. E. y Espitia, R. E. 2015. Uso de la androesterilidad genética masculina en la reconversión de genotipos para realizar selección recurrente en trigo. Rev. Mex. Cienc. Agríc. Pub. Esp. 11:2177-2182. DOI: https://doi.org/10.29312/remexca.v0i11.795

Villaseñor, M. H. E. 2015. Sistema de mejoramiento genético de trigo en México. Rev. Mex. Cienc. Agríc. Pub. Esp. 11:2183-2189. DOI: https://doi.org/10.29312/remexca.v0i11.796

Published

2021-11-09

How to Cite

Villaseñor Mir, Héctor Eduardo, Julio Huerta Espino, Ernesto Solís Moya, María Florencia Rodríguez García, Eliel Martínez Cruz, and Eduardo Espitia Rangel. 2021. “Genetic Improvement in Wheat Carried Out by INIFAP from 1985 to 2020”. Revista Mexicana De Ciencias Agrícolas 12 (25). México, ME:27-31. https://doi.org/10.29312/remexca.v12i25.2809.

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