Search bioRxiv⌕ Search

Biology subjects

Leeson, H.

Publications and source records attributed to Leeson, H..

3 recordsLinked to original sources

Substrate stiffness facilitates improved induced pluripotent stem cell production through modulation of both early and late phases of cell reprogramming

Cell reprogramming involves time-intensive, costly processes that ultimately produce low numbers of reprogrammed cells of variable quality. By screening a range of polyacrylamide hydrogels (pAAm gels) of varying stiffness (1 kPA - 1.3 MPa) we found that a gel of medium stiffness significantly increases the overall number of reprogrammed cells by up to ten-fold with accelerated reprogramming kinetics, as compared to the standard Tissue Culture PolyStyrene (TCPS)-based protocol. We observe that though the gel improves both early and late phases of reprogramming, improvement in the late (reprogramming prone population maturation) phase is more pronounced and produces iPSCs having different characteristics and lower remnant transgene expression than those produced on TCPS. Comparative RNA-Seq analyses coupled with experimental validation reveals that modulation of Bone Morphogenic Protein (BMP) signalling by a novel reprogramming regulator, Phactr3, upregulated in the gel at an earliest time-point without the influence of transcription factors used for reprogramming, plays a crucial role in the improvement in the early reprogramming kinetics and overall reprogramming outcomes. This study provides new insights into the mechanism via which substrate stiffness modulates reprogramming kinetics and iPSC quality outcomes, opening new avenues for producing higher numbers of quality iPSCs or other reprogrammed cells at shorter timescales.

bioengineering↗

Thyroid hormone and ALK5 inhibitor improve maturation of human pluripotent stem cell derived hepatocytes

Hepatocytes derived from human pluripotent stem cells (PSCs) hold great promise for modeling human liver disease, in vitro hepatotoxicity testing, and future cellular therapy. However, current protocols generate hepatocyte-like cells (HLCs) that resemble fetal hepatocytes, and thus do not accurately recapitulate the molecular identity and functions of the adult liver. To address this, we compared the transcriptomes of human fetal and adult liver to PSC-derived HLCs during progressive stages of in vitro differentiation. This revealed that during the final stages of in vitro differentiation the hepatic transcription factors HNF4A and CEBPA were sub-optimally expressed. Computational analyses predicted that ALK5i II (TGF-{beta} receptor inhibitor) and thyroid hormone (T3) would be able to rectify this and improve HLC maturation. We next show that application of these molecules during hepatocyte differentiation indeed increases CEBPA and HNF4A mRNA and protein expression, and that these HLCs show enhanced albumin secretion, a 25-fold increase in CYP3A4 activity, and 10 to 100-fold increased expression of mature hepatic markers. We demonstrate that this improved maturation is effective across different cell lines and HLC differentiation protocols, and exemplifies that our approach provides a tractable template for identifying and targeting additional factors that that will fully mature human liver cells from human pluripotent stem cells.

developmental biology↗

Deconstructing replicative senescence heterogeneity of human mesenchymal stem cells at single cell resolution reveals therapeutically targetable senescent cell sub-populations

Cellular senescence is characterised by a state of permanent cell cycle arrest. It is accompanied by often variable release of the so-called senescence-associated secretory phenotype (SASP) factors, and occurs in response to a variety of triggers such as persistent DNA damage, telomere dysfunction, or oncogene activation. While cellular senescence is a recognised driver of organismal ageing, the extent of heterogeneity within and between different senescent cell populations remains largely unclear. Elucidating the drivers and extent of variability in cellular senescence states is important for discovering novel targeted seno-therapeutics and for overcoming cell expansion constraints in the cell therapy industry. Here we combine cell biological and single cell RNA-sequencing approaches to investigate heterogeneity of replicative senescence in human ESC-derived mesenchymal stem cells (esMSCs) as MSCs are the cell type of choice for the majority of current stem cell therapies and senescence of MSC is a recognized driver of organismal ageing. Our data identify three senescent subpopulations in the senescing esMSC population that differ in SASP, oncogene expression, and escape from senescence. Uncovering and defining this heterogeneity of senescence states in cultured human esMSCs allowed us to identify potential drug targets that may delay the emergence of senescent MSCs in vitro and perhaps in vivo in the future.

bioinformatics↗