Javascript must be enabled to continue!
SIRT1 Inhibition Affects Angiogenic Properties of Human MSCs
View through CrossRef
Human mesenchymal stem cells (hMSCs) are attractive for clinical and experimental purposes due to their capability of self-renewal and of differentiating into several cell types. Autologous hMSCs transplantation has been proven to induce therapeutic angiogenesis in ischemic disorders. However, the molecular mechanisms underlying these effects remain unclear. A recent report has connected MSCs multipotency to sirtuin families, showing that SIRT1 can regulate MSCs function. Furthermore, SIRT1 is a critical modulator of endothelial angiogenic functions. Here, we described the generation of an immortalized human mesenchymal bone marrow-derived cell line and we investigated the angiogenic phenotype of our cellular model by inhibiting SIRT1 by both the genetic and pharmacological level. We first assessed the expression of SIRT1 in hMSCs under basal and hypoxic conditions at both RNA and protein level. Inhibition of SIRT1 by sirtinol, a cell-permeable inhibitor, or by specific sh-RNA resulted in an increase of premature-senescence phenotype, a reduction of proliferation rate with increased apoptosis. Furthermore, we observed a consistent reduction of tubule-like formation and migration and we found that SIRT1 inhibition reduced the hypoxia induced accumulation of HIF-1α protein and its transcriptional activity in hMSCs. Our findings identify SIRT1 as regulator of hypoxia-induced response in hMSCs and may contribute to the development of new therapeutic strategies to improve regenerative properties of mesenchymal stem cells in ischemic disorders through SIRT1 modulation.
Title: SIRT1 Inhibition Affects Angiogenic Properties of Human MSCs
Description:
Human mesenchymal stem cells (hMSCs) are attractive for clinical and experimental purposes due to their capability of self-renewal and of differentiating into several cell types.
Autologous hMSCs transplantation has been proven to induce therapeutic angiogenesis in ischemic disorders.
However, the molecular mechanisms underlying these effects remain unclear.
A recent report has connected MSCs multipotency to sirtuin families, showing that SIRT1 can regulate MSCs function.
Furthermore, SIRT1 is a critical modulator of endothelial angiogenic functions.
Here, we described the generation of an immortalized human mesenchymal bone marrow-derived cell line and we investigated the angiogenic phenotype of our cellular model by inhibiting SIRT1 by both the genetic and pharmacological level.
We first assessed the expression of SIRT1 in hMSCs under basal and hypoxic conditions at both RNA and protein level.
Inhibition of SIRT1 by sirtinol, a cell-permeable inhibitor, or by specific sh-RNA resulted in an increase of premature-senescence phenotype, a reduction of proliferation rate with increased apoptosis.
Furthermore, we observed a consistent reduction of tubule-like formation and migration and we found that SIRT1 inhibition reduced the hypoxia induced accumulation of HIF-1α protein and its transcriptional activity in hMSCs.
Our findings identify SIRT1 as regulator of hypoxia-induced response in hMSCs and may contribute to the development of new therapeutic strategies to improve regenerative properties of mesenchymal stem cells in ischemic disorders through SIRT1 modulation.
Related Results
Efficacy of Human Dental-Pulp MSCs Modified by Double-genes on Wound Healing in Diabetic-Foot Model
Efficacy of Human Dental-Pulp MSCs Modified by Double-genes on Wound Healing in Diabetic-Foot Model
Objectives:
Diabetic foot (DF) poses a great challenge to us due to its poor therapeutic
effect. To seek a new cure, the human dental pulp mesenchymal stem cells (hDP-MSCs) were
mo...
EphB4/ephrinB2 ephrinB1 Interaction Mediated Chronic Myelogenous Leukemia Mesenchymal Stromal Cells Osteogenic Differentiation in Vitro and In Vivo
EphB4/ephrinB2 ephrinB1 Interaction Mediated Chronic Myelogenous Leukemia Mesenchymal Stromal Cells Osteogenic Differentiation in Vitro and In Vivo
Abstract
Background and Objective: Osteoblasts, important of stromal cells in bone marrow microenvironment, maintain HSCs in resting state and protect its' functions...
Sirt1 in focus: unveiling molecular insights and therapeutic prospects in calcific aortic stenosis with sglt2i inhibitors
Sirt1 in focus: unveiling molecular insights and therapeutic prospects in calcific aortic stenosis with sglt2i inhibitors
Abstract
Funding Acknowledgements
Type of funding sources: Foundation. Main funding source(s): Fondazione Gigi & Pupa Ferrar...
PBX1-SIRT1 positive feedback loop attenuates ROS-mediated HF- MSC senescence and apoptosis
PBX1-SIRT1 positive feedback loop attenuates ROS-mediated HF- MSC senescence and apoptosis
Abstract
Background: Stem cell senescence and depletion are major causes of organismal aging and aging-related diseases. The NAD–SIRT1–PARP1 axis has garnered remarkable in...
NQO1 binds and supports SIRT1 function
NQO1 binds and supports SIRT1 function
AbstractSilent information regulator 2-related enzyme 1 (SIRT1) is an NAD+-dependent class III deacetylase and a key component of the cellular metabolic sensing pathway. The requir...
Role and significance of SIRT1 in regulating the LPS-activated pyroptosis pathway in children with congenital hydronephrosis
Role and significance of SIRT1 in regulating the LPS-activated pyroptosis pathway in children with congenital hydronephrosis
Objective
To explore the characteristics and mechanism of sirtuin 1 (SIRT1) in lipopolysaccharide (LPS)-activated pyroptosis in the renal tissue of children with ...
Mesenchymal Stem Cell Deficiencies in Myeloma Patients.
Mesenchymal Stem Cell Deficiencies in Myeloma Patients.
Abstract
Progression of Multiple Myeloma (MM) is associated with disrupted bone remodelling resulting from increased osteoclast activity and reduced osteoblast numbe...
SIRT1 regulates hypoxia-induced oxidative stress in cardiomyocytes via
PI3K/MTOR signaling
SIRT1 regulates hypoxia-induced oxidative stress in cardiomyocytes via
PI3K/MTOR signaling
This work was developed to investigate the activation of silent information regulator 1 (SIRT1) to
regulate hypoxia-induced oxidative stress in cardiomyocytes through the PI3K/MTOR...

