ANALYSIS OF INTERLEUKIN-10 LEVELS IN MESENCHYMAL STEM CELL SECRETOME CREAM WITH ELISA METHOD

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Vika Amelia
Marlina
Ikhwan Resmala Sudji

Abstract

Mesenchymal Stem Cells (MSC) are cells that are able to differentiate into other cells and have immunomodulatory properties that are used to treat inflammatory diseases. MSCs have the ability to repair damaged tissue by regenerating damaged tissue. MSCs produce a secretome, where the MSC secretome has various cytokines, chemokines, growth factors, anti-inflammatory factors and proteins that are produced in molecular form. One of the molecules secreted by the secretome is Interleukin-10.IL-10 is an anti-inflammatory cytokine which functions to inhibit the production of several other types of cytokines such as TNF, IL-1, chemokine and IL-12). Apart from that, IL-10 is able to inhibit the function of macrophages in assisting T cell activity. One of the products from Secretome MSC is a cream preparation. To find out whether the MSC cream contains IL-10 protein, Interleukin-10 levels were analyzed in the MSC secretome cream with 3 different MSC cream concentration formulations (2%, 3% and 5%). Analysis of IL-10 levels was carried out using ELISA to detect IL-10 antigen. The results of the examination of 9 samples showed that all samples were positive for IL-10 with a concentration of 2% dilution 1:2 showing the best results with an Optical Density (OD) of 0.069 and followed by a concentration of 5% dilution 1:2 showing an OD value of 0.065.

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How to Cite
Amelia, V., Marlina, & Sudji, I. R. (2023). ANALYSIS OF INTERLEUKIN-10 LEVELS IN MESENCHYMAL STEM CELL SECRETOME CREAM WITH ELISA METHOD. Jurnal Bioteknologi Dan Biosains Indonesia, 10(2), 203–210. Retrieved from https://ejournal.brin.go.id/JBBI/article/view/2610
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References

Caliari-Oliveira, C; Yaochite, J. N. U., et al., 2016. Xenogeneic Mesenchymal Stromal Cells improve wound Healing and Modulate the Immune response in an Extensive Burn Model. Cell Trans-plant. 25.

Caplan, H., Olson, S. D., Kumar, A., George, M., Prabhakara, K. S., Wen-zel, P., et al. (2019). Mesenchymal stromal cell therapeutic delivery: translational challenges to clinical ap-plication. Front Immunol. 10:1645.

Choi, Y. J., Lee, K. S., Yeom, S. H., and Cho, Y. W. (2017). Exosomes secret-ed by human adipose-derived stem cells regulate the expression of colla-gen synthesis related genes in human dermal fibroblasts. J. Extracell. Vesi-cles 6:141.

Das, A. Ahmed, A. B. 2017. Formulation and evaluation of transdermal patch of infomethachin containing patchouli oil as natural penetration enchancer. Asian Journal of Pharmaceutical and Clinical Research. 10(11).

Eleuteri, S., Fierabracci, A. 2019. Insight into the secretome of Mesenchymal Stem Cells and its potential applica-tions. International Journal of Molecu-lar. 20(18).

Ezquer, F., et al., 2012. The antidiabetic ef-fect of Mesenchymal Stem Cells is unrelated to their transdifferentiation potential but to their capability to re-store th1/th2 balance and to modify th pancreatic microenvironment STEM CELL. 30(8).

Fox, L. T. et al. 2011. Transdermal drug de-livery enchancement by compounds of natural origin. Molecules. 16(12).

Hallstar. 2002. Olivem® The First Emulsify-ing Active Ingredient. Product Litera-ture. Chicago: The Hallstar Company.

Kim, K. H. et al., 2020. The effect of three-dimensional cultured adipose tissue derived mesenchymal stem cell-conditioned and the antiaging effect of cosmetic product containing the me-dium. Biomedical Dermeatology. 4(1).

Kresno, S. B. 2013. Imunologi: Diagnosis dan Prosedur laboratorium. Edisi Kelima. Jakarta: Badan Penerbit FK Universitas Indonesia.

Lee D.E, A. N., A. D. K., (2016). Mesen-chymal stem cells and cutaneous wound healing: novel methods to in-crease cell delivery and therapeutic efficacy. Stem Cell Research & Ther-apy, 7(37).

Marlina., Pradifta R., Lucida H., 2021. Ana-lisis Protein pada Medium Terkondisi Sel Punca Mesenkimal. Jurnal Medika Kesehatan. 14(2).

Motegi, S., Ishikawa. 2016. Mesenchymal Stem Cells: The roles and functions in cutaneous wound healing and tumor growth. Journal of Dermatological Scinece. http://doi.org/10.1016/j.jdermsci.2016.11.005

Oh, H. A., Kwak, J., Kim, B. J., Jin, H. J., Park, W. S., Choi, S. J., et al. (2020). Migration inhibitory factor in condi-tioned medium from human umbilical cord blood-derived mesenchymal stromal cells stimulates hair growth.

Paterson Y. Z., Rash N., Garvican E.R., Paillot R., Guest D.J. 2014. Equine Mesenchymal Stromal Cells and Em-bryo-derived Stem Cells are Immune Privileged in Vitro. Stem Cell Re-search and Therapy. 5(4): 90.

Pawitan J. A. (2014). Prospect of Stem Cell Conditioned Medium in Regenera-tive Medicine. BioMed Research In-ternational.

Saeedi P, Halabian R, Imani Fooladi AA. 2019. A revealing review of mesen-chymal stem cells therapy, clinical perspectives and Modification strate-gies. Stem Cell Investig. 6(34).

Sapudom, J., W. X., C. M. , A. M. , A. U. , & P. T. (2017). Fibroblast fate regulation by time dependent TGF-β1 and IL-10 stimulation in biomimetic 3D matrices. Biomaterials Science, 5(9), 1858–1867.

Simper, D. et al., 2010. Comparative prote-omics profiling reveals role of smooth muscle progenitors in extracellular matrix production. Arteriosclerosis, Thrombosis and Vascular Biology. 30(7).

Sohn, S. J. et al. 2018. Anti-aging Proper-ties of Conditioned Media of Epider-mal Progenitor cells Derved from Mesenchymal Stem Cell. Dermatolo-gy and Therapy. 8(2).

Stefanini, M. O. et al., 2008. A compartment model of VEGF distribution in blood, healthy and diseased tissues. BMC System Biology.

Willms E, Johansson HJ, Mäger I, Lee Y, Blomberg KE, Sadik M, Alaarg A, Smith CI, Lehtiö J, El Andaloussi S, Wood MJ, Vader P. 2016. Cells re-lease subpopulations of exosomes with distinct molecular and biological properties. 6: 22519