A REVIEW: ESTABLISHMENT AND APPLICATIONS OF STARCHY CROPS CELL SUSPENSION CULTURES

Authors

Keywords:

starchy crops, cell suspension culture, culture parameters

Abstract

Starchy crops are crops that contain starch which is the main source of dietary energy for the world’s population. Starchy crops include rice, sweet potato, cassava, soybean, corn, wheat and more. Plant tissue culture offers many advantages including the regeneration of whole plants from plant cells that have been genetically modified, the production of medicinal compounds and a convenient tool for molecular levels studies.  The purpose of this paper is to review the latest progress in cell suspension culture for starchy crops. Different types of starchy crops require different parameters for the optimum growth rate which depends on the purpose of establishing them. The main parameters that affect the growth of cell suspension culture are the type of media used and growth conditions such as inoculum size and agitation rate. The procedures for establishing cell suspension culture are generally similar for all types of plants. As of now, reports on cell suspension cultures for starchy crops focus more on the regeneration of plants and the transformation of plant cells for enhancing plant traits. In conclusion, the culture parameters for starchy crop cell suspension growth differed based on its application and purpose.

Author Biographies

Noor Illi Mohamad Puad, International Islamic University Malaysia

Bioprocess and Molecular Engineering Research Unit (BPMERU),

Department of Chemical Engineering and Sustainability, Kulliyyah of Engineering,

International Islamic University Malaysia (IIUM), P.O. Box 10, 50728 Kuala Lumpur, Malaysia

Sarina Sulaiman, International Islamic University Malaysia

Bioprocess and Molecular Engineering Research Unit (BPMERU),

Department of Chemical Engineering and Sustainability, Kulliyyah of Engineering,

International Islamic University Malaysia (IIUM), P.O. Box 10, 50728 Kuala Lumpur, Malaysia

Yusilawati Ahmad Nor, International Islamic University Malaysia

Bioprocess and Molecular Engineering Research Unit (BPMERU),

Department of Chemical Engineering and Sustainability, Kulliyyah of Engineering,

International Islamic University Malaysia (IIUM), P.O. Box 10, 50728 Kuala Lumpur, Malaysia

Fazlena Hamzah, International Islamic University Malaysia

Faculty of Chemical Engineering, Universiti Teknologi MARA (UiTM), 40450 Shah Alam, Selangor Darul Ehsan

References

Lal, M. K., Singh, B., Sharma, S., Singh, M. P., & Kumar, A. (2021). Glycemic index of starchy crops and factors affecting its digestibility: A review. Trends in Food Science and Technology, 111(March), 741–755. https://doi.org/10.1016/j.tifs.2021.02.067

Islam, M. R., Kim, N. S., Jung, J. W., Kim, H. B., Han, S. C., & Yang, M. S. (2018). Spontaneous pepsin C-catalyzed activation of human pepsinogen C in transgenic rice cell suspension culture: Production and characterization of human pepsin C. Enzyme and Microbial Technology, 108(May 2017), 66–73. https://doi.org/10.1016/j.enzmictec.2017.09.006

Ramulifho, E., Goche, T., Van As, J., Tsilo, T. J., Chivasa, S., & Ngara, R. (2019). Establishment and Characterization of Callus and Cell Suspension Cultures of Selected Sorghum bicolor (L.) Moench Varieties: A resource for gene discovery in plant stress biology. Agronomy, 9(5). https://doi.org/10.3390/agronomy9050218

Marisol Ochoa-Villarreal, Howat, S., Hong, S. M., Jang, M. O., Jin, Y. W., Lee, E. K., & Loake, G. J. (2016). Plant cell culture strategies for the production of natural products. BMB Reports, 49(3), 149–158. https://doi.org/10.5483/BMBRep.2016.49.3.264

Ivanova, N., Gugleva, V., Dobreva, M., Pehlivanov, I., Stefanov, S., & Andonova, V. (2016). We are IntechOpen , the world ’ s leading publisher of Open Access books Built by scientists , for scientists TOP 1 %. Intech, i(tourism), 13.

Limpongsa, E., & Jaipakdee, N. (2020). Physical modification of Thai rice starch and its application as an orodispersible film former. Carbohydrate Polymers, 239(March), 116206. https://doi.org/10.1016/j.carbpol.2020.116206

Tan, S. L. (2015). Cassava – Silently, The Tuber Fills. UTAR Agriculture Science Journal, 1(2), 12–24.

Li, A., Xiao, R., He, S., An, X., He, Y., Wang, B., Shi, X., & He, I. (2019). Molecules-24-03816.

Xiong, Y., Zhang, P., Warner, R. D., & Fang, Z. (2019). Sorghum Grain: From Genotype, Nutrition, and Phenolic Profile to Its Health Benefits and Food Applications. Comprehensive Reviews in Food Science and Food Safety, 18(6), 2025–2046. https://doi.org/10.1111/1541-4337.12506

Van Giap, D., Jung, J. W., & Kim, N. S. (2019). Production of functional recombinant cyclic citrullinated peptide monoclonal antibody in transgenic rice cell suspension culture. Transgenic Research, 28(2), 177–188. https://doi.org/10.1007/s11248-019-00113-w

Volk, G. M., & Caspersen, A. M. (2017). Cryoprotectants and components induce plasmolytic responses in sweet potato (Ipomoea batatas (L.) Lam.) suspension cells. In Vitro Cellular and Developmental Biology - Plant, 53(4), 363–371. https://doi.org/10.1007/s11627-017-9834-5

Liu, D., Ford, K. L., Roessner, U., Natera, S., Cassin, A. M., Patterson, J. H., & Bacic, A. (2013). Rice suspension cultured cells are evaluated as a model system to study salt responsive networks in plants using a combined proteomic and metabolomic profiling approach. Proteomics, 13(12–13), 2046–2062. https://doi.org/10.1002/pmic.201200425

Kong, E. Y. Y., Biddle, J., Foale, M., & Adkins, S. W. (2020). Cell suspension culture: A potential in vitro culture method for clonal propagation of coconut plantlets via somatic embryogenesis. Industrial Crops and Products, 147(October 2019), 112125. https://doi.org/10.1016/j.indcrop.2020.112125

Marconi, M., & Wabnik, K. (2021). Shaping the Organ: A Biologist Guide to Quantitative Models of Plant Morphogenesis. Frontiers in Plant Science, 12(1). https://doi.org/10.3389/fpls.2021.746183

Mustafa, N. R., De Winter, W., Van Iren, F., & Verpoorte, R. (2011). Initiation, growth and cryopreservation of plant cell suspension cultures. Nature Protocols, 6(6), 715–742. https://doi.org/10.1038/nprot.2010.144

?

Nasution, N. H., & Nasution, I. W. (2019). The Effect of Plant Growth Regulators on Callus Induction of Mangosteen (Garcinia mangostana L.). IOP Conference Series: Earth and Environmental Science, 305(1). https://doi.org/10.1088/1755-1315/305/1/012049

Systems, C. guidance. (2020). Conditioning cell culture media. https://www.cellgs.com/blog/conditioning-cell-culture-media.html

Martínez, M. E., Jorquera, L., Poirrier, P., Díaz, K., & Chamy, R. (2023). Effect of Inoculum Size and Age, and Sucrose Concentration on Cell Growth to Promote Metabolite Production in Cultured Taraxacum officinale (Weber) Cells. Plants, 12(5). https://doi.org/10.3390/plants12051116

Singh, M., & Chaturvedi, R. (2012). Evaluation of nutrient uptake and physical parameters on cell biomass growth and production of spilanthol in suspension cultures of Spilanthes acmella Murr. Bioprocess and Biosystems Engineering, 35(6), 943–951. https://doi.org/10.1007/s00449-012-0679-3

Downloads

Published

2023-10-12

How to Cite

Mohd sofri, N. S. N., MOHAMAD PUAD, N. I., Sulaiman, S., Ahmad Nor, Y., & Hamzah, F. (2023). A REVIEW: ESTABLISHMENT AND APPLICATIONS OF STARCHY CROPS CELL SUSPENSION CULTURES . IIUM Engineering Congress Proceedings, 1(1), 88–93. Retrieved from https://journals.iium.edu.my/ejournal/index.php/proc/article/view/3013

Issue

Section

Chemical Engineering & Sustainability

Most read articles by the same author(s)