Acknowledgement
This work was supported by the National Research Foundation of Korea (NRF-2020R1F1A1070475) and the Korea Research Institute of Bioscience and Biotechnology (KRIBB) Research Initiative Program (KGM9952213).
References
- Secunda R, Vennila R, Mohanashankar AM, Rajasundari M, Jeswanth S and Surendran R (2015) Isolation, expansion and characterisation of mesenchymal stem cells from human bone marrow, adipose tissue, umbilical cord blood and matrix: a comparative study. Cytotechnology 67, 793-807 https://doi.org/10.1007/s10616-014-9718-z
- Arana M, Mazo M, Aranda P, Pelacho B and Prosper F (2013) Adipose tissue-derived mesenchymal stem cells: isolation, expansion, and characterization. Methods Mol Biol 1036, 47-61 https://doi.org/10.1007/978-1-62703-511-8_4
- Mosna F, Sensebe L and Krampera M (2010) Human bone marrow and adipose tissue mesenchymal stem cells: a user's guide. Stem Cells Dev 19, 1449-1470 https://doi.org/10.1089/scd.2010.0140
- Green JD, Tollemar V, Dougherty M et al (2015) Multifaceted signaling regulators of chondrogenesis: Implications in cartilage regeneration and tissue engineering. Genes Dis 2, 307-327 https://doi.org/10.1016/j.gendis.2015.09.003
- Lam ATL, Reuveny S and Oh SK (2020) Human mesenchymal stem cell therapy for cartilage repair: review on isolation, expansion, and constructs. Stem Cell Res 44, 101738 https://doi.org/10.1016/j.scr.2020.101738
- Chen YC, Chang YW, Tan KP, Shen YS, Wang YH and Chang CH (2018) Can mesenchymal stem cells and their conditioned medium assist inflammatory chondrocytes recovery? PLoS One 13, e0205563 https://doi.org/10.1371/journal.pone.0205563
- Richardson SM, Kalamegam G, Pushparaj PN et al (2016) Mesenchymal stem cells in regenerative medicine: Focus on articular cartilage and intervertebral disc regeneration. Methods 99, 69-80 https://doi.org/10.1016/j.ymeth.2015.09.015
- Strioga M, Viswanathan S, Darinskas A, Slaby O and Michalek J (2012) Same or not the same? Comparison of adipose tissue-derived versus bone marrow-derived mesenchymal stem and stromal cells. Stem Cells Dev 21, 2724-2752 https://doi.org/10.1089/scd.2011.0722
- Oh SY, Choi YM, Kim HY et al (2019) Application of tonsil-derived mesenchymal stem cells in tissue regeneration: concise review. Stem Cells 37, 1252-1260 https://doi.org/10.1002/stem.3058
- Ryu KH, Cho KA, Park HS et al (2012) Tonsil-derived mesenchymal stromal cells: evaluation of biologic, immunologic and genetic factors for successful banking. Cytotherapy 14, 1193-1202 https://doi.org/10.3109/14653249.2012.706708
- Somoza RA, Welter JF, Correa D and Caplan AI (2014) Chondrogenic differentiation of mesenchymal stem cells: challenges and unfulfilled expectations. Tissue Eng Part B Rev 20, 596-608 https://doi.org/10.1089/ten.teb.2013.0771
- Kim H, Park S, Kim K, Ku S, Seo J and Roh S (2019) Enterococcus faecium L-15 cell-free extract improves the chondrogenic differentiation of human dental pulp stem cells. Int J Mol Sci 20, 624 https://doi.org/10.3390/ijms20030624
- Deng Y, Lei G, Lin Z, Yang Y, Lin H and Tuan RS (2019) Engineering hyaline cartilage from mesenchymal stem cells with low hypertrophy potential via modulation of culture conditions and Wnt/β-catenin pathway. Biomaterials 192, 569-578 https://doi.org/10.1016/j.biomaterials.2018.11.036
- Alibardi L (2018) Tail regeneration reduction in lizards after repetitive amputation or cauterization reflects an increase of immune cells in blastemas. Zool Res 39, 413-423 https://doi.org/10.24272/j.issn.2095-8137.2018.050
- Moghanjoghi SM, Ganjibakhsh M, Gohari NS et al (2018) Establishment and characterization of rough-tailed gecko original tail cells. Cytotechnology 70, 1337-1347 https://doi.org/10.1007/s10616-018-0223-7
- Alibardi L (2015) Original and regenerating lizard tail cartilage contain putative resident stem/progenitor cells. Micron 78, 10-18 https://doi.org/10.1016/j.micron.2015.06.003
- Szarek D, Marycz K, Lis A et al (2016) Lizard tail spinal cord: a new experimental model of spinal cord injury without limb paralysis. FASEB J 30, 1391-403 https://doi.org/10.1096/fj.15-272468
- Bae KS, Kim SY, Park SY et al (2014) Identification of lactoferrin as a human dedifferentiation factor through the studies of reptile tissue regeneration mechanisms. J Microbiol Biotechnol 24, 869-878 https://doi.org/10.4014/jmb.1402.02009
- Marzec M, Eletto D and Argon Y (2012) GRP94: An HSP90-like protein specialized for protein folding and quality control in the endoplasmic reticulum. Biochim Biophys Acta 1823, 774-787 https://doi.org/10.1016/j.bbamcr.2011.10.013
- Lambrecht S, Juchtmans N and Elewaut D (2014) Heatshock proteins in stromal joint tissues: innocent bystanders or disease-initiating proteins?. Rheumatology (Oxford) 53, 223-232 https://doi.org/10.1093/rheumatology/ket277
- Ghiasi SM, Dahlby T, Hede Andersen C et al (2019) Endoplasmic reticulum chaperone glucose-regulated protein 94 is essential for proinsulin handling. Diabetes 68, 747-760 https://doi.org/10.2337/db18-0671
- Almalki SG and Agrawal DK (2016) Effects of matrix metalloproteinases on the fate of mesenchymal stem cells. Stem Cell Res Ther 7, 129 https://doi.org/10.1186/s13287-016-0393-1
- Fan Z, Tardif G, Hum D, Duval N, Pelletier JP and Martel-Pelletier J (2009) Hsp90{beta} and p130(cas): novel regulatory factors of MMP-13 expression in human osteoarthritic chondrocytes. Ann Rheum Dis 68, 976-982 https://doi.org/10.1136/ard.2008.092288
- Chatterjee S, Bhattacharya S, Socinski MA and Burns TF (2016) HSP90 inhibitors in lung cancer: promise still unfulfilled. Clin Adv Hematol Oncol 14, 346-356
- Hughes A, Oxford AE, Tawara K, Jorcyk CL and Oxford JT (2017) Endoplasmic reticulum stress and unfolded protein response in cartilage pathophysiology; contributing factors to apoptosis and osteoarthritis. Int J Mol Sci 18, 665 https://doi.org/10.3390/ijms18030665
- Kondo S, Saito A, Asada R and Kanemoto S and Imaizumi K (2011) Physiological unfolded protein response regulated by OASIS family members, transmembrane bZIP transcription factors. IUBMB Life 63, 233-239 https://doi.org/10.1002/iub.433
- Meyer BA and Doroudgar S (2020) ER stress-induced secretion of proteins and their extracellular functions in the heart. Cells 9, 2066 https://doi.org/10.3390/cells9092066
- Gallagher CM and Walter P (2016) Ceapins inhibit ATF6α signaling by selectively preventing transport of ATF6α to the Golgi apparatus during ER stress. Elife 5, e11880 https://doi.org/10.7554/elife.11880
- Lee AS (2014) Glucose-regulated proteins in cancer: molecular mechanisms and therapeutic potential. Nat Rev Cancer 14, 263-276 https://doi.org/10.1038/nrc3701
- Yang F, Tang XY, Liu H and Jiang ZW (2016) Inhibition of mitogen-activated protein kinase signaling pathway sensitizes breast cancer cells to endoplasmic reticulum stress-induced apoptosis. Oncol Rep 35, 2113-2120 https://doi.org/10.3892/or.2016.4580
- Darling NJ and Cook SJ (2014) The role of MAPK signalling pathways in the response to endoplasmic reticulum stress. Biochim Biophys Acta 1843, 2150-2163 https://doi.org/10.1016/j.bbamcr.2014.01.009
- Haze K, Yoshida H, Yanagi H, Yura T and Mori K (1999) Mammalian transcription factor ATF6 is synthesized as a transmembrane protein and activated by proteolysis in response to endoplasmic reticulum stress. Mol Biol Cell 10, 3787-3799 https://doi.org/10.1091/mbc.10.11.3787
- Shen C, Jiang T, Zhu B et al (2018) In vitro culture expansion impairs chondrogenic differentiation and the therapeutic effect of mesenchymal stem cells by regulating the unfolded protein response. J Biol Eng 12, 26 https://doi.org/10.1186/s13036-018-0119-2
- Li J, Zhao Z, Liu J et al (2010) MEK/ERK and p38 MAPK regulate chondrogenesis of rat bone marrow mesenchymal stem cells through delicate interaction with TGF-β1/Smads pathway. Cell Prolif 43, 333-343 https://doi.org/10.1111/j.1365-2184.2010.00682.x
- Leppa S, Saffrich R, Ansorge W and Bohmann D (1998) Differential regulation of c-Jun by ERK and JNK during PC12 cell differentiation. EMBO J 17, 4404-4413 https://doi.org/10.1093/emboj/17.15.4404
- Luo S, Shi Q, Li W, Wu W and Zha Z (2020) ITGB1 promotes the chondrogenic differentiation of human adipose-derived mesenchymal stem cells by activating the ERK signaling. J Mol Histol 51, 729-739 https://doi.org/10.1007/s10735-020-09918-0