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The 2i (MEK/ERK and GSK3β inhibitor) culture system was originally developed to refine heterogeneous serum-based mouse embryonic stem cells (mESC) cultures to a uniform ground state of pluripotency akin to the mouse preimplantation epiblast1. However, 2i does not support the stable maintenance of human pluripotent stem cell (hPSC) lines2. The various complex small molecule, growth factor-supplemented, and transgenic approaches have recently been reported to capture putatively similar human naïve-like pluripotent molecular states2. However, many of the "naïve-like" states created with these methods also exhibited karyotypic instability, epigenomic defects (e.g., global loss of parental genomic imprinting), or impaired differentiation potential.
In contrast, the cocktail of triple chemical inhibition of GSK3β, ERK and tankyrase signaling and leukemia inhibitory factor (LIF-3i) was sufficient for the stable naïve-like reversion of a broad repertoire of conventional hPSC lines3. LIF-3i-reverted naïve hPSC (N-hPSC) maintained normal karyotypes and increased their expressions of naïve-specific human preimplantation epiblast genes (e.g.,NANOG, KLF2, NR5A2, DNMT3L, HERVH, Stella (DPPA3), KLF17, TFCP2L1). LIF-3i reversion also conferred hPSC with an array of molecular and biochemical characteristics unique to mESC-like naïve pluripotency that included increased phosphorylated STAT3 signaling, decreased ERK phosphorylation, global 5-methylcytosine CpG hypomethylation, genome-wide CpG demethylation at embryonic stem cell (ESC)-specific gene promoters, and dominant distal OCT4 enhancer usage. Moreover, in comparison to other naïve reversion methods that resulted in aberrantly hypomethylated imprinted genomic loci, LIF-3i-reverted N-hPSC were devoid of systematic loss of imprinted CpG patterns or loss of DNA methyltransferase expression (e.g., DNMT1, DNMT3A, DNMT3B)3.
A direct LIF-3i culture of a broad array of conventional human embryonic stem cells (hESC) and human induced pluripotent stem cells (hiPSC) grown on either feeders or E8 feeder-free conditions achieved rapid and bulk reversion to a naïve epiblast-like state. However, direct LIF-3i naïve reversion may be inefficient in some unstable conventional hPSC lines due to the inherent genomic and lineage-primed variabilities arising from the genetically diverse donor backgrounds.
Thus, to broaden the utility of the LIF-3i method, a stepwise optimization was developed and is presented herein, that allows universal naïve reversion with almost any conventional hESC or transgene-free hiPSC line cultured on feeders. This universalized naïve reversion method employs a transient initial culture step in conventional hPSC that supplements the LIF-3i cocktail with two additional small molecules (LIF-5i) that potentiate protein kinase A (forskolin) and sonic hedgehog (sHH) (purmorphamine) signaling. One initial passage of conventional hPSC in LIF-5i adapts them to subsequent stable LIF-3i reversion in bulk quantities. Initial LIF-5i adaptation significantly augments the initial single cell clonal proliferation of conventional hPSC grown on E8 or feeders (prior to their subsequent stable, continuous passage in LIF-3i alone). Conventional hPSC lines adapted first to one passage in LIF-5i tolerate subsequent bulk clonal passaging of naïve-reverted cells in LIF-3i conditions, which obviates the need for picking and subcloning of the rare stable colonies, or the routine use of anti-apoptotic molecules or Rho-associated protein kinase (ROCK) inhibitors.
The LIF-3i method has been successfully employed to stably expand and maintain a broad repertoire of >30 independent, genetically-diverse conventional hPSC lines for >10–30 passages using either non-enzymatic or enzymatic dissociation methods, and without evidence of induction of chromosomal or epigenomic abnormalities, including abnormalities at imprinted gene loci. Additionally, sequential LIF-5i/LIF-3i culture is the only naïve reversion method that has thus far been reported that improves the functional pluripotency of a broad repertoire of conventional hPSC lines by decreasing their lineage-primed gene expression and dramatically improving their multipotent differentiation potency. The LIF-3i naïve reversion method erases the inherent interline variability of differentiation of lineage-primed, conventional hPSC lines, and will have a great utility of application in regenerative medicine and cellular therapies.