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1. Generation of stable integration-free pig induced pluripotent stem cells under chemically defined culture condition.

2. Research progress and application prospects of stable porcine pluripotent stem cells†.

3. IRF-1 expressed in the inner cell mass of the porcine early blastocyst enhances the pluripotency of induced pluripotent stem cells.

4. Mthfd2 Modulates Mitochondrial Function and DNA Repair to Maintain the Pluripotency of Mouse Stem Cells.

5. A cytokine screen using CRISPR-Cas9 knock-in reporter pig iPS cells reveals that Activin A regulates NANOG.

6. Generation of pig induced pluripotent stem cells using an extended pluripotent stem cell culture system.

7. Long non-coding RNAs involved in the regulatory network during porcine pre-implantation embryonic development and iPSC induction.

8. Lipid Supplement in the Cultural Condition Facilitates the Porcine iPSC Derivation through cAMP/PKA/CREB Signal Pathway.

9. Embryo development after mitochondrial supplementation from induced pluripotent stem cells.

10. Distinct MicroRNA Expression Signatures of Porcine Induced Pluripotent Stem Cells under Mouse and Human ESC Culture Conditions.

11. Induction of Germ Cell-like Cells from Porcine Induced Pluripotent Stem Cells.

12. Improvement in Mouse iPSC Induction by Rab32 Reveals the Importance of Lipid Metabolism during Reprogramming.

13. Pluripotent and Metabolic Features of Two Types of Porcine iPSCs Derived from Defined Mouse and Human ES Cell Culture Conditions.

14. Telomere reprogramming and maintenance in porcine iPS cells.

15. Piglets cloned from induced pluripotent stem cells.

16. Overcoming barriers to the clinical utilization of iPSCs: reprogramming efficiency, safety and quality.

18. A novel strategy to derive iPS cells from porcine fibroblasts.

19. Tbx3 improves the germ-line competency of induced pluripotent stem cells.

20. The nuclear receptor Nr5a2 can replace Oct4 in the reprogramming of murine somatic cells to pluripotent cells.

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