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Dive into the research topics where Mamle Quarmyne is active.

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Featured researches published by Mamle Quarmyne.


Nature Medicine | 2013

Epidermal growth factor regulates hematopoietic regeneration after radiation injury.

Phuong L. Doan; Heather A. Himburg; Katherine Helms; J. Lauren Russell; Emma Fixsen; Mamle Quarmyne; Jeffrey R. Harris; Divino Deoliviera; Julie M. Sullivan; Nelson J. Chao; David G. Kirsch; John P. Chute

The mechanisms that regulate hematopoietic stem cell (HSC) regeneration after myelosuppressive injury are not well understood. We identified epidermal growth factor (EGF) to be highly enriched in the bone marrow serum of mice bearing deletion of Bak and Bax in TIE2-expressing cells in Tie2Cre; Bak1−/−; Baxflox/– mice. These mice showed radioprotection of the HSC pool and 100% survival after a lethal dose of total-body irradiation (TBI). Bone marrow HSCs from wild-type mice expressed functional EGF receptor (EGFR), and systemic administration of EGF promoted the recovery of the HSC pool in vivo and improved the survival of mice after TBI. Conversely, administration of erlotinib, an EGFR antagonist, decreased both HSC regeneration and the survival of mice after TBI. Mice with EGFR deficiency in VAV-expressing hematopoietic cells also had delayed recovery of bone marrow stem and progenitor cells after TBI. Mechanistically, EGF reduced radiation-induced apoptosis of HSCs and mediated this effect through repression of the proapoptotic protein PUMA. Our findings show that EGFR signaling regulates HSC regeneration after myelosuppressive injury.


Journal of Clinical Investigation | 2014

Pleiotrophin mediates hematopoietic regeneration via activation of RAS

Heather A. Himburg; Xiao Yan; Phuong L. Doan; Mamle Quarmyne; Eva Micewicz; William H. McBride; Nelson J. Chao; Dennis J. Slamon; John P. Chute

Hematopoietic stem cells (HSCs) are highly susceptible to ionizing radiation-mediated death via induction of ROS, DNA double-strand breaks, and apoptotic pathways. The development of therapeutics capable of mitigating ionizing radiation-induced hematopoietic toxicity could benefit both victims of acute radiation sickness and patients undergoing hematopoietic cell transplantation. Unfortunately, therapies capable of accelerating hematopoietic reconstitution following lethal radiation exposure have remained elusive. Here, we found that systemic administration of pleiotrophin (PTN), a protein that is secreted by BM-derived endothelial cells, substantially increased the survival of mice following radiation exposure and after myeloablative BM transplantation. In both models, PTN increased survival by accelerating the recovery of BM hematopoietic stem and progenitor cells in vivo. PTN treatment promoted HSC regeneration via activation of the RAS pathway in mice that expressed protein tyrosine phosphatase receptor-zeta (PTPRZ), whereas PTN treatment did not induce RAS signaling in PTPRZ-deficient mice, suggesting that PTN-mediated activation of RAS was dependent upon signaling through PTPRZ. PTN strongly inhibited HSC cycling following irradiation, whereas RAS inhibition abrogated PTN-mediated induction of HSC quiescence, blocked PTN-mediated recovery of hematopoietic stem and progenitor cells, and abolished PTN-mediated survival of irradiated mice. These studies demonstrate the therapeutic potential of PTN to improve survival after myeloablation and suggest that PTN-mediated hematopoietic regeneration occurs in a RAS-dependent manner.


Nature Medicine | 2017

Dickkopf-1 promotes hematopoietic regeneration via direct and niche-mediated mechanisms

Heather A. Himburg; Phuong L. Doan; Mamle Quarmyne; Xiao Yan; Joshua P. Sasine; Liman Zhao; Grace V Hancock; Jenny Kan; Katherine Pohl; Evelyn Tran; Nelson J. Chao; Jeffrey R. Harris; John P. Chute

The role of osteolineage cells in regulating hematopoietic stem cell (HSC) regeneration following myelosuppression is not well understood. Here we show that deletion of the pro-apoptotic genes Bak and Bax in osterix (Osx, also known as Sp7 transcription factor 7)-expressing cells in mice promotes HSC regeneration and hematopoietic radioprotection following total body irradiation. These mice showed increased bone marrow (BM) levels of the protein dickkopf-1 (Dkk1), which was produced in Osx-expressing BM cells. Treatment of irradiated HSCs with Dkk1 in vitro increased the recovery of both long-term repopulating HSCs and progenitor cells, and systemic administration of Dkk1 to irradiated mice increased hematopoietic recovery and improved survival. Conversely, inducible deletion of one allele of Dkk1 in Osx-expressing cells in adult mice inhibited the recovery of BM stem and progenitor cells and of complete blood counts following irradiation. Dkk1 promoted hematopoietic regeneration via both direct effects on HSCs, in which treatment with Dkk1 decreased the levels of mitochondrial reactive oxygen species and suppressed senescence, and indirect effects on BM endothelial cells, in which treatment with Dkk1 induced epidermal growth factor (EGF) secretion. Accordingly, blockade of the EGF receptor partially abrogated Dkk1-mediated hematopoietic recovery. These data identify Dkk1 as a regulator of hematopoietic regeneration and demonstrate paracrine cross-talk between BM osteolineage cells and endothelial cells in regulating hematopoietic reconstitution following injury.


Journal of Clinical Investigation | 2015

Protein tyrosine phosphatase–σ regulates hematopoietic stem cell–repopulating capacity

Mamle Quarmyne; Phuong L. Doan; Heather A. Himburg; Xiao Yan; Mai Nakamura; Liman Zhao; Nelson J. Chao; John P. Chute

Hematopoietic stem cell (HSC) function is regulated by activation of receptor tyrosine kinases (RTKs). Receptor protein tyrosine phosphatases (PTPs) counterbalance RTK signaling; however, the functions of receptor PTPs in HSCs remain incompletely understood. We found that a receptor PTP, PTPσ, was substantially overexpressed in mouse and human HSCs compared with more mature hematopoietic cells. Competitive transplantation of bone marrow cells from PTPσ-deficient mice revealed that the loss of PTPσ substantially increased long-term HSC-repopulating capacity compared with BM cells from control mice. While HSCs from PTPσ-deficient mice had no apparent alterations in cell-cycle status, apoptosis, or homing capacity, these HSCs exhibited increased levels of activated RAC1, a RhoGTPase that regulates HSC engraftment capacity. shRNA-mediated silencing of PTPσ also increased activated RAC1 levels in wild-type HSCs. Functionally, PTPσ-deficient BM cells displayed increased cobblestone area-forming cell (CAFC) capacity and augmented transendothelial migration capacity, which was abrogated by RAC inhibition. Specific selection of human cord blood CD34⁺CD38⁻CD45RA⁻lin⁻ PTPσ⁻ cells substantially increased the repopulating capacity of human HSCs compared with CD34⁺CD38⁻CD45RA⁻lin⁻ cells and CD34⁺CD38⁻CD45RA⁻lin⁻PTPσ⁺ cells. Our results demonstrate that PTPσ regulates HSC functional capacity via RAC1 inhibition and suggest that selecting for PTPσ-negative human HSCs may be an effective strategy for enriching human HSCs for transplantation.


Cell Reports | 2012

Pleiotrophin regulates the retention and self-renewal of hematopoietic stem cells in the bone marrow vascular niche

Heather A. Himburg; Jeffrey R. Harris; Takahiro Ito; Pamela Daher; J. Lauren Russell; Mamle Quarmyne; Phuong L. Doan; Katherine Helms; Mai Nakamura; Emma Fixsen; Gonzalo Herradón; Tannishtha Reya; Nelson J. Chao; Sheila Harroch; John P. Chute


Cell Reports | 2016

Deletion of the Imprinted Gene Grb10 Promotes Hematopoietic Stem Cell Self-Renewal and Regeneration

Xiao Yan; Heather A. Himburg; Katherine Pohl; Mamle Quarmyne; Evelyn Tran; Yurun Zhang; Tiancheng Fang; Jenny Kan; Nelson J. Chao; Liman Zhao; Phuong L. Doan; John P. Chute


Blood | 2010

Panobinostat, a Novel Histone Deacetylase (HiDAC) Inhibitor Enhances the Anti-Tumor Activity of Bortezomib (BTZ) In Rituximab-Chemotherapy Sensitive and Resistant Lymphoma Cell Lines

J. Lauren Russell; Phuong L. Doan; Heather A. Himburg; Sarah K. Meadows; Pamela Daher; Katherine Helms; Mamle Quarmyne; Nelson J. Chao; David G. Kirsch; John P. Chute


Blood | 2010

Pleiotrophin Signaling Is Necessary and Sufficient for Hematopoietic Stem Cell Self-Renewal In Vivo

Heather A. Himburg; Pamela Daher; J. Lauren Russell; Phuong L. Doan; Mamle Quarmyne; Sarah K. Meadows; Katherine Helms; Gonzalo Herradón; Nelson J. Chao; John P. Chute


Blood | 2016

A Small Molecule Inhibitor of Protein Tyrosine Phosphatase-Sigma (PTPσ) Promotes Hematopoietic Stem Cell (HSC) Regeneration

Yurun Zhang; Mamle Quarmyne; Heather A. Himburg; Xiao Yan; William H. McBride; Michael E. Jung; John P. Chute


Biology of Blood and Marrow Transplantation | 2016

Growth Factor Receptor-Bound Protein 10 (Grb10) Regulates Hematopoietic Stem Cell (HSC) Self-Renewal and Regeneration Via Control of mTOR Signaling

John P. Chute; Xiao Yan; Heather A. Himburg; Phuong L. Doan; Mamle Quarmyne; Evelyn Tran; Nelson J. Chao; Liman Zhao

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John P. Chute

University of California

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Xiao Yan

University of California

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Liman Zhao

University of California

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Evelyn Tran

University of California

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