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A defined xeno-free and feeder-free culture system for the derivation, expansion and direct differentiation of transgene-free patient-specific induced pluripotent stem cells.
Lu, Hong Fang; Chai, Chou; Lim, Tze Chiun; Leong, Meng Fatt; Lim, Jia Kai; Gao, Shujun; Lim, Kah Leong; Wan, Andrew C A.
Affiliation
  • Lu HF; Institute of Bioengineering and Nanotechnology, 31 Biopolis Way, The Nanos, Singapore 138669, Singapore. Electronic address: hflu@ibn.a-star.edu.sg.
  • Chai C; Duke-NUS Graduate Medical School, Singapore 169857, Singapore.
  • Lim TC; Institute of Bioengineering and Nanotechnology, 31 Biopolis Way, The Nanos, Singapore 138669, Singapore.
  • Leong MF; Institute of Bioengineering and Nanotechnology, 31 Biopolis Way, The Nanos, Singapore 138669, Singapore.
  • Lim JK; Institute of Bioengineering and Nanotechnology, 31 Biopolis Way, The Nanos, Singapore 138669, Singapore.
  • Gao S; Institute of Bioengineering and Nanotechnology, 31 Biopolis Way, The Nanos, Singapore 138669, Singapore.
  • Lim KL; Duke-NUS Graduate Medical School, Singapore 169857, Singapore; National Neuroscience Institute, Singapore 308433, Singapore.
  • Wan AC; Institute of Bioengineering and Nanotechnology, 31 Biopolis Way, The Nanos, Singapore 138669, Singapore. Electronic address: awan@ibn.a-star.edu.sg.
Biomaterials ; 35(9): 2816-26, 2014 Mar.
Article in En | MEDLINE | ID: mdl-24411336
ABSTRACT
A defined xeno-free system for patient-specific iPSC derivation and differentiation is required for translation to clinical applications. However, standard somatic cell reprogramming protocols rely on using MEFs and xenogeneic medium, imposing a significant obstacle to clinical translation. Here, we describe a well-defined culture system based on xeno-free media and LN521 substrate which supported i) efficient reprogramming of normal or diseased skin fibroblasts from human of different ages into hiPSCs with a 15-30 fold increase in efficiency over conventional viral vector-based method; ii) long-term self-renewal of hiPSCs; and iii) direct hiPSC lineage-specific differentiation. Using an excisable polycistronic vector and optimized culture conditions, we achieved up to 0.15%-0.3% reprogramming efficiencies. Subsequently, transgene-free hiPSCs were obtained by Cre-mediated excision of the reprogramming factors. The derived iPSCs maintained long-term self-renewal, normal karyotype and pluripotency, as demonstrated by the expression of stem cell markers and ability to form derivatives of three germ layers both in vitro and in vivo. Importantly, we demonstrated that Parkinson's patient transgene-free iPSCs derived using the same system could be directed towards differentiation into dopaminergic neurons under xeno-free culture conditions. Our approach provides a safe and robust platform for the generation of patient-specific iPSCs and derivatives for clinical and translational applications.
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Full text: 1 Database: MEDLINE Main subject: Cell Differentiation / Transgenes / Cell Culture Techniques / Induced Pluripotent Stem Cells / Feeder Cells Type of study: Guideline Limits: Adult / Animals / Humans Language: En Year: 2014 Type: Article

Full text: 1 Database: MEDLINE Main subject: Cell Differentiation / Transgenes / Cell Culture Techniques / Induced Pluripotent Stem Cells / Feeder Cells Type of study: Guideline Limits: Adult / Animals / Humans Language: En Year: 2014 Type: Article