Design of nutrigenetic portfolios targeting CETP and LPL variants in the prevention of dyslipidemias.

Authors

  • ITZEL ZAMUDIO-FELIX Institute of Research in Molecular Genetics, Department of Medical and Life Sciences, University Center of Cienega, University of Guadalajara, Jalisco, Mexico. Author https://orcid.org/0009-0008-1799-7026
  • GRECIA DENISSE GONZÁLEZ-SÁNCHEZ Institute of Research in Molecular Genetics, Department of Medical and Life Sciences, University Center of Cienega, University of Guadalajara, Jalisco, Mexico. Author https://orcid.org/0000-0002-4628-8498
  • Karina Gonzalez-Becerra Institute of Research in Molecular Genetics, Department of Medical and Life Sciences, University Center of Cienega, University of Guadalajara, Jalisco, Mexico. Author https://orcid.org/0000-0002-2291-2380

DOI:

https://doi.org/10.70983/xte2jq88

Keywords:

nutrigenetic portafolio, Dyslipidemia, Nutrigenetics, Single nucleotide variants (SNVs)

Abstract

Introduction: Nutrigenetics enables the identification of genetic factors that modulate individual responses to dietary components, supporting the development of personalized nutritional strategies for the prevention and management of chronic diseases. Among these factors, genetic variants in CETP and LPL have been linked to an increased susceptibility to dyslipidemias. Designing nutrigenetic portfolios—dietary recommendations tailored to a person’s genetic profile—offers a promising approach to optimize metabolic health. Results: Evidence shows that carriers of the C allele in LPL may experience reductions in triglyceride levels when following diets rich in monounsaturated fats. In contrast, CETP variants, particularly the T (B2) allele, display significant interactions with the intake of simple carbohydrates and monounsaturated fats, influencing HDL cholesterol and triglyceride concentrations. Based on these findings, specific nutrigenetic recommendations include reducing monounsaturated fat intake and limiting sucrose consumption in individuals carrying risk variants in CETP (T allele) and LPL (T allele). Conclusions: Integrating genetic information into dietary planning can substantially enhance the prevention and treatment of dyslipidemias and cardiovascular diseases, reinforcing the value of personalized nutrition in clinical practice.

References

Akbarzadeh, M., Hassanzadeh, T., Saidijam, M., Esmaeili, R., Borzouei, Sh., Hajilooi, M., Mahjub, H., & Paoli, M. (2012). Cholesteryl ester transfer protein (CETP) −629C/A polymorphism and it,s effects on the serum lipid levels in metabolic syndrome patients. Molecular Biology Reports, 39(10), 9529-9534. https://doi.org/10.1007/s11033-012-1817-3

Al-Bustan, S. A., Al-Serri, A., Alnaqeeb, M. A., Annice, B. G., & Mojiminiyi, O. (2019). Genetic association of LPL rs1121923 and rs258 with plasma TG and VLDL levels. Scientific Reports, 9(1), 5572. https://doi.org/10.1038/s41598-019-42021-3

Arrieta, R. T. (2021). Lipoprotein Lipase and its Participation in Cardiovascular Diseases. https://doi.org/: 10.3823/1466

Campos‐Perez, W., Perez‐Robles, M., Torres‐Castillo, N., Rodríguez‐Reyes, S. C., De la Cerda Trujillo, L. F., Navarro‐Muñiz, E., Lopez‐Lizárraga, C. R., Llamas‐Covarrubias, I. M., & Martinez‐Lopez, E. (2020). Physical inactivity and excessive sucrose consumption are associated with higher serum lipids in subjects with Taq1B CETP polymorphism. Journal of Human Nutrition and Dietetics, 33(3), 299-307. https://doi.org/10.1111/jhn.12747

Civeira, F., Mateo-Gallego, R., Burillo, E., & Cenarro, A. (2010). La elevación del colesterol unido a lipoproteínas de alta densidad: Perspectiva futura. La CETP como diana terapéutica. Clínica e Investigación en Arteriosclerosis, 22, 44-48. https://doi.org/10.1016/S0214-9168(10)70020-6

Colima-Fausto, A. G., Sánchez-Corona, J., Ramírez-López, G., García-Zapien, A. G., & Magaña-Torres, M. T. (2020). Association of the -629C>A (rs1800775) CETP Polymorphism with the Development of Essential Hypertension in Mexican Population. Genetic Testing and Molecular Biomarkers, 24(7), 451-456. https://doi.org/10.1089/gtmb.2020.0012

Corella, D., Sorlí, J. V., Estruch, R., Coltell, O., Ortega-Azorín, C., Portolés, O., et al. (2014). MicroRNA-410 regulated lipoprotein lipase variant rs13702 is associated with stroke incidence and modulated by diet in the randomized controlled PREDIMED trial,,. The American Journal of Clinical Nutrition, 100(2), 719-731. https://doi.org/10.3945/ajcn.113.076992

Defagó, M. D., & Eynard, A. R. (2022). Potenciales de la nutrigenética en el abordaje y tratamiento de enfermedades cardiovasculares y factores de riesgo asociados. Revista de la Facultad de Ciencias Médicas de Córdoba, 79(2), 168-180. https://doi.org/10.31053/1853.0605.v79.n2.30289

Di Renzo, L., Gualtieri, P., Romano, L., Marrone, G., Noce, A., Pujia, A., Perrone, M. A., Aiello, V., Colica, C., & De Lorenzo, A. (2019). Role of Personalized Nutrition in Chronic-Degenerative Diseases. Nutrients, 11(8), 1707. https://doi.org/10.3390/nu11081707

Estévez-González, M. D., Saavedra-Santana, P., López-Ríos, L., Chirino, R., Cebrero-García, E., Peña-Quintana, L., & Betancor-León, P. (2010). HDL Cholesterol Levels in Children with Mild Hypercholesterolemia: Effect of Consuming Skim Milk Enriched with Olive Oil and Modulation by the TAQ 1B Polymorphism in the CETP Gene. Annals of Nutrition and Metabolism, 56(4), 288-293. https://doi.org/10.1159/000290405

Gammon, C. S., Minihane, A. M., Kruger, R., Conlon, C. A., von Hurst, P. R., Jones, B., & Stonehouse, W. (2014). TaqIB polymorphism in the cholesteryl ester transfer protein ( CETP ) gene influences lipid responses to the consumption of kiwifruit in hypercholesterolaemic men. British Journal of Nutrition, 111(6), 1077-1084. https://doi.org/10.1017/S0007114513003437

Giraldo, A. M., Loango, N., Castaño, H., & Landázuri, P. (2012). Actividad de la proteína transportadora de ésteres de colesterol. Polimorfismos del gen en pacientes colombianos con enfermedad coronaria. Revista Colombiana de Cardiología, 19(4), 172-179. https://doi.org/10.1016/S0120-5633(12)70127-4

Hammad, S. S., Eck, P., Sihag, J., Chen, X., Connelly, P. W., Lamarche, B., Couture, P., Guay, V., Maltais-Giguère, J., West, S. G., Kris-Etherton, P. M., Bowen, K. J., Jenkins, D. J. A., Taylor, C. G., Perera, D., Wilson, A., Castillo, S., Zahradka, P., & Jones, P. J. H. (2019). Common Variants in Lipid Metabolism–Related Genes Associate with Fat Mass Changes in Response to Dietary Monounsaturated Fatty Acids in Adults with Abdominal Obesity. The Journal of Nutrition, 149(10), 1749-1756. https://doi.org/10.1093/jn/nxz136

Hannon, B. A., Edwards, C. G., Thompson, S. V., Burke, S. K., Burd, N. A., Holscher, H. D., Teran-Garcia, M., & Khan, N. A. (2020). Genetic Variants in Lipid Metabolism Pathways Interact with Diet to Influence Blood Lipid Concentrations in Adults with Overweight and Obesity. Lifestyle Genomics, 13(6), 155-163. https://doi.org/10.1159/000507021

Hernando-Redondo, J., Malcampo, M., Pérez-Vega, K. A., Paz-Graniel, I., Martínez-González, M. Á., Corella, D., Estruch, R., Salas-Salvadó, J., Pintó, X., Arós, F., Bautista-Castaño, I., Romaguera, D., Lapetra, J., Ros, E., Cueto-Galán, R., Fitó, M., & Castañer, O. (2024). Mediterranean Diet Modulation of Neuroinflammation-Related Genes in Elderly Adults at High Cardiovascular Risk. Nutrients, 16(18), 3147. https://doi.org/10.3390/nu16183147

Kersten, S. (2014). Physiological regulation of lipoprotein lipase. Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids, 1841(7), 919-933. https://doi.org/10.1016/j.bbalip.2014.03.013

Lima, M. M., Balladares, N., Bermúdez, A., López, G., & Soltero, I. (2011). Bases Fisiológicas del Metabolismo de Lipoproteínas. 13.

Linares, S., Bermúdez, V., Salazar, J., Nava, M., Ortega, Á., Olivar, L., Calvo, M., Martínez, M. S., Morales-Carrasco, A., Chacín, M., & Rojas, J. (2020). Análisis clínico-epidemiológico de las subfracciones HDL2 y HDL3 en adultos de la ciudad de Maracaibo, Venezuela. Revista Peruana de Medicina Experimental y Salud Pública, 37(3), 412-422. https://doi.org/10.17843/rpmesp.2020.373.4787

Martínez-López, E., García-García, M. R., Campos-Pérez, W. Y., & González-Becerra, K. (2013). Genómica nutricional: Conceptos y expectativas.

Pavía-López, A. A., Alcocer-Gamba, M. A., Ruiz-Gastélum, E. D.,et al. (2022). Guía de práctica clínica mexicana para el diagnóstico y tratamiento de las dislipidemias y enfermedad cardiovascular aterosclerótica. Archivos de Cardiología de México, 92(91), 8094. https://doi.org/10.24875/ACM.M22000081

Ramírez-Bello, J. (2017). Implicaciones funcionales de los polimorfismos de un solo nucleótido (SNP) en genes codificantes de proteínas y no codificantes en enfermedades multifactoriales. Gaceta Médica de México.

Richardson, K., Nettleton, J. A., Rotllan, N., Tanaka, T., Smith, C. E., Lai, C.-Q., Parnell, L. D., Lee, Y.-C., Lahti, J., Lemaitre, R. N., Manichaikul, A., Keller, M., Mikkilä, V., Ngwa, J., van Rooij, F. J. A., Ballentyne, C. M., Borecki, I. B., Cupples, L. A., Garcia, M., … Ordovas, J. M. (2013). Gain-of-Function Lipoprotein Lipase Variant rs13702 Modulates Lipid Traits through Disruption of a MicroRNA-410 Seed Site. The American Journal of Human Genetics, 92(1), 5-14. https://doi.org/10.1016/j.ajhg.2012.10.020

Rodríguez-Ramírez, S., Gaona-Pineda, E. B., Martínez-Tapia, B., Arango-Angarita, A., Kim-Herrera, E. Y., Valdez-Sánchez, A., Medina-Zacarías, M. C., Shamah-Levy, T., & Ramírez-Silva, I. (2020). Consumo de grupos de alimentos y su asociación con características sociodemográficas en población mexicana. Ensanut 2018-19. Salud Pública de México, 62(6, Nov-Dic), 693-703. https://doi.org/10.21149/11529

Wuni, R., Kuhnle, G. G. C., Wynn-Jones, A. A., & Vimaleswaran, K. S. (2022). A Nutrigenetic Update on CETP Gene–Diet Interactions on Lipid-Related Outcomes. Current Atherosclerosis Reports, 24(2), 119-132. https://doi.org/10.1007/s11883-022-00987-y

portafolio nutrigenetico

Published

2026-02-06