Literature DB >> 25391646

Defining the optimal window for cranial transplantation of human induced pluripotent stem cell-derived cells to ameliorate radiation-induced cognitive impairment.

Munjal M Acharya1, Vahan Martirosian1, Lori-Ann Christie1, Lara Riparip1, Jan Strnadel1, Vipan K Parihar1, Charles L Limoli2.   

Abstract

Past preclinical studies have demonstrated the capability of using human stem cell transplantation in the irradiated brain to ameliorate radiation-induced cognitive dysfunction. Intrahippocampal transplantation of human embryonic stem cells and human neural stem cells (hNSCs) was found to functionally restore cognition in rats 1 and 4 months after cranial irradiation. To optimize the potential therapeutic benefits of human stem cell transplantation, we have further defined optimal transplantation windows for maximizing cognitive benefits after irradiation and used induced pluripotent stem cell-derived hNSCs (iPSC-hNSCs) that may eventually help minimize graft rejection in the host brain. For these studies, animals given an acute head-only dose of 10 Gy were grafted with iPSC-hNSCs at 2 days, 2 weeks, or 4 weeks following irradiation. Animals receiving stem cell grafts showed improved hippocampal spatial memory and contextual fear-conditioning performance compared with irradiated sham-surgery controls when analyzed 1 month after transplantation surgery. Importantly, superior performance was evident when stem cell grafting was delayed by 4 weeks following irradiation compared with animals grafted at earlier times. Analysis of the 4-week cohort showed that the surviving grafted cells migrated throughout the CA1 and CA3 subfields of the host hippocampus and differentiated into neuronal (∼39%) and astroglial (∼14%) subtypes. Furthermore, radiation-induced inflammation was significantly attenuated across multiple hippocampal subfields in animals receiving iPSC-hNSCs at 4 weeks after irradiation. These studies expand our prior findings to demonstrate that protracted stem cell grafting provides improved cognitive benefits following irradiation that are associated with reduced neuroinflammation. ©AlphaMed Press.

Entities:  

Keywords:  Cognition; Fear conditioning; Hippocampus; Induced pluripotent stem cell-derived human neural stem cells; Novel place recognition; Radiation; Transplantation

Mesh:

Year:  2014        PMID: 25391646      PMCID: PMC4275007          DOI: 10.5966/sctm.2014-0063

Source DB:  PubMed          Journal:  Stem Cells Transl Med        ISSN: 2157-6564            Impact factor:   6.940


  40 in total

1.  Differential contribution of amygdala and hippocampus to cued and contextual fear conditioning.

Authors:  R G Phillips; J E LeDoux
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2.  Human neural stem cell transplantation ameliorates radiation-induced cognitive dysfunction.

Authors:  Munjal M Acharya; Lori-Ann Christie; Mary L Lan; Erich Giedzinski; John R Fike; Susanna Rosi; Charles L Limoli
Journal:  Cancer Res       Date:  2011-07-14       Impact factor: 12.701

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Journal:  Arterioscler Thromb Vasc Biol       Date:  2009-02-05       Impact factor: 8.311

Review 4.  Concise review: Can stem cells be used to treat or model Alzheimer's disease?

Authors:  Wesley W Chen; Mathew Blurton-Jones
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6.  Amelioration of radiation-induced liver damage in partially hepatectomized rats by hepatocyte transplantation.

Authors:  C Guha; A Sharma; S Gupta; A Alfieri; G R Gorla; S Gagandeep; R Sokhi; N Roy-Chowdhury; K E Tanaka; B Vikram; J Roy-Chowdhury
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7.  Effects of transplanted bone marrow mesenchymal stem cells on the irradiated intestine of mice.

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9.  MiR-133b promotes neural plasticity and functional recovery after treatment of stroke with multipotent mesenchymal stromal cells in rats via transfer of exosome-enriched extracellular particles.

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10.  Rescue of salivary gland function after stem cell transplantation in irradiated glands.

Authors:  Isabelle M A Lombaert; Jeanette F Brunsting; Pieter K Wierenga; Hette Faber; Monique A Stokman; Tineke Kok; Willy H Visser; Harm H Kampinga; Gerald de Haan; Robert P Coppes
Journal:  PLoS One       Date:  2008-04-30       Impact factor: 3.240

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2.  Low dose radiation effects on the brain - from mechanisms and behavioral outcomes to mitigation strategies.

Authors:  Anna Kovalchuk; Bryan Kolb
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3.  Neurological Impairments in Mice Subjected to Irradiation and Chemotherapy.

Authors:  Deblina Dey; Vipan K Parihar; Gergely G Szabo; Peter M Klein; Jenny Tran; Jonathan Moayyad; Faizy Ahmed; Quynh-Anh Nguyen; Alexandria Murry; David Merriott; Brandon Nguyen; Jodi Goldman; Maria C Angulo; Daniele Piomelli; Ivan Soltesz; Janet E Baulch; Charles L Limoli
Journal:  Radiat Res       Date:  2020-03-05       Impact factor: 2.841

4.  3D surface analysis of hippocampal microvasculature in the irradiated brain.

Authors:  Brianna M Craver; Munjal M Acharya; Barrett D Allen; Sarah N Benke; Nan W Hultgren; Janet E Baulch; Charles L Limoli
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5.  Remediation of Radiation-Induced Cognitive Dysfunction through Oral Administration of the Neuroprotective Compound NSI-189.

Authors:  Barrett D Allen; Munjal M Acharya; Celine Lu; Erich Giedzinski; Nicole N Chmielewski; David Quach; Mike Hefferan; Karl K Johe; Charles L Limoli
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Review 7.  Addressing the Symptoms or Fixing the Problem? Developing Countermeasures against Normal Tissue Radiation Injury.

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8.  Exposure to Ionizing Radiation Causes Endoplasmic Reticulum Stress in the Mouse Hippocampus.

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9.  Extracellular Vesicle-Derived miR-124 Resolves Radiation-Induced Brain Injury.

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10.  Cranial grafting of stem cell-derived microvesicles improves cognition and reduces neuropathology in the irradiated brain.

Authors:  Janet E Baulch; Munjal M Acharya; Barrett D Allen; Ning Ru; Nicole N Chmielewski; Vahan Martirosian; Erich Giedzinski; Amber Syage; Audrey L Park; Sarah N Benke; Vipan K Parihar; Charles L Limoli
Journal:  Proc Natl Acad Sci U S A       Date:  2016-04-04       Impact factor: 11.205

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