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1.
Nature ; 605(7909): 325-331, 2022 05.
Article in English | MEDLINE | ID: mdl-35418683

ABSTRACT

Cellular reprogramming can manipulate the identity of cells to generate the desired cell types1-3. The use of cell intrinsic components, including oocyte cytoplasm and transcription factors, can enforce somatic cell reprogramming to pluripotent stem cells4-7. By contrast, chemical stimulation by exposure to small molecules offers an alternative approach that can manipulate cell fate in a simple and highly controllable manner8-10. However, human somatic cells are refractory to chemical stimulation owing to their stable epigenome2,11,12 and reduced plasticity13,14; it is therefore challenging to induce human pluripotent stem cells by chemical reprogramming. Here we demonstrate, by creating an intermediate plastic state, the chemical reprogramming of human somatic cells to human chemically induced pluripotent stem cells that exhibit key features of embryonic stem cells. The whole chemical reprogramming trajectory analysis delineated the induction of the intermediate plastic state at the early stage, during which chemical-induced dedifferentiation occurred, and this process was similar to the dedifferentiation process that occurs in axolotl limb regeneration. Moreover, we identified the JNK pathway as a major barrier to chemical reprogramming, the inhibition of which was indispensable for inducing cell plasticity and a regeneration-like program by suppressing pro-inflammatory pathways. Our chemical approach provides a platform for the generation and application of human pluripotent stem cells in biomedicine. This study lays foundations for developing regenerative therapeutic strategies that use well-defined chemicals to change cell fates in humans.


Subject(s)
Cell Differentiation , Cellular Reprogramming , Induced Pluripotent Stem Cells , Cell Lineage , Humans , Induced Pluripotent Stem Cells/cytology
2.
Nat Med ; 28(2): 272-282, 2022 02.
Article in English | MEDLINE | ID: mdl-35115708

ABSTRACT

Human pluripotent stem-cell-derived islets (hPSC-islets) are a promising cell resource for diabetes treatment1,2. However, this therapeutic strategy has not been systematically assessed in large animal models physiologically similar to humans, such as non-human primates3. In this study, we generated islets from human chemically induced pluripotent stem cells (hCiPSC-islets) and show that a one-dose intraportal infusion of hCiPSC-islets into diabetic non-human primates effectively restored endogenous insulin secretion and improved glycemic control. Fasting and average pre-prandial blood glucose levels significantly decreased in all recipients, accompanied by meal or glucose-responsive C-peptide release and overall increase in body weight. Notably, in the four long-term follow-up macaques, average hemoglobin A1c dropped by over 2% compared with peak values, whereas the average exogenous insulin requirement reduced by 49% 15 weeks after transplantation. Collectively, our findings show the feasibility of hPSC-islets for diabetic treatment in a preclinical context, marking a substantial step forward in clinical translation of hPSC-islets.


Subject(s)
Diabetes Mellitus, Experimental , Islets of Langerhans Transplantation , Islets of Langerhans , Animals , Blood Glucose , Diabetes Mellitus, Experimental/therapy , Humans , Insulin , Islets of Langerhans Transplantation/physiology , Primates
3.
Science ; 364(6438): 399-402, 2019 04 26.
Article in English | MEDLINE | ID: mdl-31023926

ABSTRACT

The maintenance of terminally differentiated cells, especially hepatocytes, in vitro has proven challenging. Here we demonstrated the long-term in vitro maintenance of primary human hepatocytes (PHHs) by modulating cell signaling pathways with a combination of five chemicals (5C). 5C-cultured PHHs showed global gene expression profiles and hepatocyte-specific functions resembling those of freshly isolated counterparts. Furthermore, these cells efficiently recapitulated the entire course of hepatitis B virus (HBV) infection over 4 weeks with the production of infectious viral particles and formation of HBV covalently closed circular DNA. Our study demonstrates that, with a chemical approach, functional maintenance of PHHs supports long-term HBV infection in vitro, providing an efficient platform for investigating HBV cell biology and antiviral drug screening.


Subject(s)
Hepatitis B virus/growth & development , Hepatocytes/physiology , Hepatocytes/virology , Primary Cell Culture/methods , Virus Cultivation/methods , Antiviral Agents/isolation & purification , Antiviral Agents/pharmacology , DNA, Circular/biosynthesis , DNA, Circular/isolation & purification , DNA, Viral/biosynthesis , DNA, Viral/isolation & purification , Drug Evaluation, Preclinical , Hepatitis B virus/drug effects , Hepatocytes/drug effects , Hepatocytes/metabolism , Humans , Transcriptome , Virion/drug effects , Virion/growth & development
4.
Cell ; 163(7): 1678-91, 2015 Dec 17.
Article in English | MEDLINE | ID: mdl-26686652

ABSTRACT

Somatic cells can be reprogrammed into pluripotent stem cells (PSCs) by using pure chemicals, providing a different paradigm to study somatic reprogramming. However, the cell fate dynamics and molecular events that occur during the chemical reprogramming process remain unclear. We now show that the chemical reprogramming process requires the early formation of extra-embryonic endoderm (XEN)-like cells and a late transition from XEN-like cells to chemically-induced (Ci)PSCs, a unique route that fundamentally differs from the pathway of transcription factor-induced reprogramming. Moreover, precise manipulation of the cell fate transition in a step-wise manner through the XEN-like state allows us to identify small-molecule boosters and establish a robust chemical reprogramming system with a yield up to 1,000-fold greater than that of the previously reported protocol. These findings demonstrate that chemical reprogramming is a promising approach to manipulate cell fates.


Subject(s)
Cellular Reprogramming Techniques , Pluripotent Stem Cells/cytology , Animals , Drug Discovery , Embryo, Mammalian/cytology , Endoderm/cytology , Endoderm/metabolism , Fibroblasts/metabolism , Gene Expression , Mice , Pluripotent Stem Cells/drug effects
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