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Transplanted Hematopoietic Stem Cells Reverse Damage Caused By Friedreich’s Ataxia

Transplanted Hematopoietic Stem Cells Reverse Damage Caused By Friedreich’s Ataxia

Summary: According to researchers, a single infusion of HSPCs may halt cellular damage caused by Friedreich’s ataxia.

Source: UCSD.

Researchers at University of California San Diego School of Medicine report that a single infusion of wildtype hematopoietic stem and progenitor cells (HSPCs) into a mouse model of Friedreich’s ataxia (FA) measurably halted cellular damage caused by the degenerative disease.

The findings, published online in the October 25 issue of Science Translational Medicine, suggest a potential therapeutic approach for a disease that currently is considered incurable.

Friedreich’s ataxia is an inherited, degenerative neuromuscular disorder that initially impairs motor function, such as gait and coordination, but can lead to scoliosis, heart disease, vision loss and diabetes. Cognitive function is not affected. The disease is progressively debilitating, and ultimately requires full-time use of a wheelchair. One in 50,000 Americans has FA.

FA is caused by reduced expression of a mitochondrial protein called frataxin (FXN) due to a two mutated or abnormal copies of the FXN gene. In their study, Stephanie Cherqui, PhD, associate professor in the UC San Diego School of Medicine Department of Pediatrics, and colleagues used a transgenic mouse model that expresses two mutant human FXN transgenes, and exhibits the resulting progressive neurological degeneration and muscle weakness.

Image shows hematopoietic stem cells.

Human hematopoietic stem and progenitor cells (HSPCs), derived from bone marrow, have become a primary vehicle for efforts to replace or regenerate cells destroyed by a variety of diseases. Previous research by Cherqui and colleagues had shown that transplanting wildtype or normal mouse HSPCs resulted in long-term kidney, eye and thyroid preservation in a mouse model of cystinosis, another genetic disorder.

In this study, Cherqui’s team transplanted wildtype HSPCs into an FA mouse model, reporting that the HSPCs engrafted and soon differentiated into macrophages in key regions of the mice’s brain and spinal cord where they appeared to transfer wildtype FXN into deficient neurons and muscle cells.

“Transplantation of wildtype mouse HSPCs essentially rescued FA-impacted cells,” said Cherqui, “Frataxin expression was restored. Mitochondrial function in the brains of the transgenic mice normalized, as did in the heart. There was also decreased skeletal muscle atrophy.”

The scientists note that the mouse model is not perfect mirror of human FA. Disease progression is somewhat different and the precise pathology in mice is not fully known. However, Cherqui said the findings are encouraging and point toward a potential treatment for a disease that currently has none.

ABOUT THIS NEUROSCIENCE RESEARCH ARTICLE

Co-authors include: Celine J. Rocca, Spencer M. Goodman, Jennifer N. Dulin, Joseph H. Haquang, Hya Gertsman, Jordan Blondelle, Janell L.M. Smith, and Charles J. Heyser, all at UC San Diego.

Disclosure: Stephanie Cherqui is cofounder, shareholder and a member of both the scientific board and board of directors of GenStem Therapeutics Inc. The terms of this arrangement have been reviewed and approved by the University of California San Diego in accordance with its conflict of interest policies.

Funding: Funding provided by National Institutes of Health the Cystinosis Research Foundation the Sanford Stem Cell Clinical Center and the California Institute of Regenerative Medicine..

Source: Scott LaFee – UCSD
Publisher: Organized by NeuroscienceNews.com.
Image Source: NeuroscienceNews.com image is credited to Stephanie Cherqui, UC San Diego School of Medicine.
Original Research:Abstract for “Transplantation of wild-type mouse hematopoietic stem and progenitor cells ameliorates deficits in a mouse model of Friedreich’s ataxia” by Celine J. Rocca, Spencer M. Goodman, Jennifer N. Dulin, Joseph H. Haquang, Ilya Gertsman, Jordan Blondelle, Janell L. M. Smith, Charles J. Heyser and Stephanie Cherqui in Science Translational Medicine. Published online October 25 2017 doi:10.1126/scitranslmed.aaj2347

CITE THIS NEUROSCIENCENEWS.COM ARTICLE
UCSD “Transplanted Hematopoietic Stem Cells Reverse Damage Caused By Friedreich’s Ataxia.” NeuroscienceNews. NeuroscienceNews, 26 October 2017.
<http://neurosciencenews.com/friedreichs-ataxia-stem-cells-7820/&gt;.

Abstract

Transplantation of wild-type mouse hematopoietic stem and progenitor cells ameliorates deficits in a mouse model of Friedreich’s ataxia

Friedreich’s ataxia (FRDA) is an incurable autosomal recessive neurodegenerative disease caused by reduced expression of the mitochondrial protein frataxin due to an intronic GAA-repeat expansion in the FXN gene. We report the therapeutic efficacy of transplanting wild-type mouse hematopoietic stem and progenitor cells (HSPCs) into the YG8R mouse model of FRDA. In the HSPC-transplanted YG8R mice, development of muscle weakness and locomotor deficits was abrogated as was degeneration of large sensory neurons in the dorsal root ganglia (DRGs) and mitochondrial capacity was improved in brain, skeletal muscle, and heart. Transplanted HSPCs engrafted and then differentiated into microglia in the brain and spinal cord and into macrophages in the DRGs, heart, and muscle of YG8R FRDA mice. We observed the transfer of wild-type frataxin and Cox8 mitochondrial proteins from HSPC-derived microglia/macrophages to FRDA mouse neurons and muscle myocytes in vivo. Our results show the HSPC-mediated phenotypic rescue of FRDA in YG8R mice and suggest that this approach should be investigated further as a strategy for treating FRDA.

“Transplantation of wild-type mouse hematopoietic stem and progenitor cells ameliorates deficits in a mouse model of Friedreich’s ataxia” by Celine J. Rocca, Spencer M. Goodman, Jennifer N. Dulin, Joseph H. Haquang, Ilya Gertsman, Jordan Blondelle, Janell L. M. Smith, Charles J. Heyser and Stephanie Cherqui in Science Translational Medicine. Published online October 25 2017 doi:10.1126/scitranslmed.aaj2347


Comparative analysis of gait in Parkinson’s disease, cerebellar ataxia and subcortical arteriosclerotic encephalopathy.

Abstract

Quantitative gait analysis has been used to elucidate characteristic features of neurological gait disturbances. Although a number of studies compared single patient groups with controls, there are only a few studies comparing gait parameters between patients with different neurological disorders affecting gait. In the present study, gait parameters were compared between control subjects, patients with parkinsonian gait due to idiopathic Parkinson’s disease, subjects suffering from cerebellar ataxia and patients with gait disturbance due to subcortical arteriosclerotic encephalopathy. In addition to recording of baseline parameters during preferred walking velocity, subjects were required to vary velocity from very slow to very fast. Values of velocity and stride length from each subject were then used for linear regression analysis. Whereas all patient groups showed slower walking velocity and reduced step length compared with healthy controls when assessed during preferred walking, patients with ataxia and subcortical arteriosclerotic encephalopathy had, in addition, increased variability of amplitude and timing of steps. Regression analysis showed that with changing velocity, subjects with Parkinson’s disease changed their stride length in the same proportion as that measured in controls. In contrast, patients with ataxia and subcortical arteriosclerotic encephalopathy had a disproportionate contribution of stride length when velocity was increased. Whereas the findings in patients with Parkinson’s disease can be explained as a reduction of force gain, the observations for patients with ataxia and subcortical arteriosclerotic encephalopathy reflect an altered spatiotemporal gait strategy in order to compensate for instability. The similarity of gait disturbance in subcortical arteriosclerotic encephalopathy and cerebellar ataxia suggests common mechanisms.

Dopamine and your health

brain scan.

DELVING INTO DOPAMINE

Researchers examining how learning processes are affected in some neurodegenerative diseases uncover how neural impulses form memories.… READ MORE…

Hormones and Health

Hormones and Health

Image shows a brain.

WHY TEENS TAKE RISKS: IT’S NOT A DEFICIT IN BRAIN DEVELOPMENT

Researchers report it might not be slowed prefrontal cortex development that drives teens to embark in risky behavior, as some common theories state. Instead, they argue, teens may make risky decisions as a means of experience building so they are better equipped at making important decisions later in life.… READ MORE…

More Women’s Health

More Women’s Health

Women’s health

Women’s health

Image shows brain scan.

WOMEN HAVE MORE ACTIVE BRAINS THAN MEN

A large scale SPECT imaging study reveals women’s brains are significantly more active in more regions than males, including the prefronal cortex and limbic areas. Visual and areas associated with coordination were more active in males, researchers noted.… READ

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Immune Cells Could Help Rebuild Damaged Nerves

Immune Cells Could Help Rebuild Damaged Nerves

Summary: A new study reveals neutrophils can help the nervous system clear nerve debris and assist with neuroregeneration.

Source: Case Western Reserve University.

Immune cells are normally associated with fighting infection but in a new study, scientists have discovered how they also help the nervous system clear debris, clearing the way for nerve regeneration after injury. In a study published in the Journal of Neuroscience, researchers from Case Western Reserve University School of Medicine showed certain immune cells–neutrophils–can clean up nerve debris, while previous models have attributed nerve cell damage control to other cells entirely.

“This finding is quite surprising and raises an important question: do neutrophils play a significant role in nerve disorders?” said Richard Zigmond, PhD, senior author on the study and professor of neurosciences, neurosurgery, and pathology at Case Western Reserve University School of Medicine. Neutrophils are one of the most common types of immune cells and known to engulf microorganisms, but they are not normally associated with peripheral nerve damage, such as that caused by diabetes or trauma.

In the new study, Zigmond and colleagues found damaged nerve cells produce a stream of molecular lures that specifically attract neutrophils to injury sites in mice. Damaged mouse sciatic nerves produced hundreds of times the normal amount of two “chemoattractant” molecules, Cxcl1 and Cxcl2, which attach to the surfaces of neutrophils and draw the immune cells into injured tissue. Once at the injury site, the neutrophils engulf cellular debris caused by the nerve damage, tidying up the area so the cells can repair themselves. The process is akin to clearing debris caused by a tornado before rebuilding a power grid. Without the cellular clearance mechanism, nerves can’t properly regenerate after injury.

Previous studies have pointed to immune cells called macrophages as the primary immune cell responsible for engulfing and breaking down nerve debris. The Zigmond laboratory had been studying macrophages in mouse models. Specifically, the team was studying mice genetically modified to lack a receptor on the surface of macrophages–CCR2–that helps macrophages hone in on injury sites. Zigmond asked his graduate student, PhD candidate Jane Lindborg, to look for clearance of nerve cell debris in these mice. “We expected that the clearance would be dramatically inhibited without the receptor. To our amazement, the clearance was unchanged from that in normal mice. The mystery Lindborg had to solve was how nerve cell debris is cleared in these mutant animals,” Zigmond said.

“We came up with a list of potential cellular candidates that could be compensating for the loss of these specific macrophages and used several different tests to determine which cells were clearing away the nerve debris after injury,” Lindborg said. The experiments included sorting immune cells found at injury sites by molecules on their cellular surfaces, and many hours looking at mouse cells through the microscope. “Though it turns out that several different cells pick up the slack in the absence of macrophages, it was the neutrophil that emerged as a major contributor to debris removal. We also discovered that when we depleted neutrophils, nerve debris clearance was significantly halted in both normal mice and mice lacking a major population of macrophages.” Without neutrophils, nerve cells could not properly clear debris.

Image shows a neutrophils.

The findings could open the door for new therapeutics designed to help repair nerve cells damaged by neurodegenerative disease. Said Zigmond, “The clearance of debris after an injury is necessary to allow for effective nerve regeneration. Therefore, if one would want to enhance this clearance in patients, one would need to know what cells to target.” Results from the new study suggest immunostimulant molecules that target neutrophils at nerve injury sites might enhance clean-up and promote nerve cell repair. Immunostimulant molecules are often used to treat chronic infections and immunodeficiencies, but additional studies will be needed to determine their specificity and effectiveness in the context of neuropathies.

Said Lindborg, “We have identified a novel and beneficial role for neutrophils in facilitating debris removal after injury, which has been shown to be an important step in promoting regeneration of the severed nerve. We look forward to exploring exactly how these neutrophils work in concert with other cells to accomplish nerve regeneration.”

ABOUT THIS NEUROSCIENCE RESEARCH ARTICLE

Funding: This study was conducted in collaboration with colleagues from University Hospital Regensburg in Germany. Funding for the study was provided by National Institutes of Health Grants DK097223 and NS095017 (to R.E.Z) and NS067431 and F31NS093694 (to support J.A.L.). Breeding and genotyping of animals were performed by the CWRU Visual Sciences Specialized Animal Research Core (EY11373). The CWRU Electron Microscopy Core, CWRU Cytometry and Imaging Microscopy Core, and CWRU Light Microscopy Imaging Facility also assisted with the experiments. Use of the Leica SP-8 Confocal Microscope was made available through Office of Research Infrastructure Shared Instrumentation Grant S10OD016164.

Source: Ansley Gogol – Case Western Reserve University
Publisher: Organized by NeuroscienceNews.com.
Image Source: NeuroscienceNews.com image is credited to Dr Graham Beards and is licensed CC BY SA 3.0.
Original Research: Abstract for “Neutrophils Are Critical for Myelin Removal in a Peripheral Nerve Injury Model of Wallerian Degeneration” by Jane A. Lindborg, Matthias Mack and Richard E. Zigmond in Journal of Neuroscience. Published online October 25 2017 doi:10.1523/JNEUROSCI.2085-17.2017

CITE THIS NEUROSCIENCENEWS.COM ARTICLE
Case Western Reserve University “Immune Cells Could Help Rebuild Damaged Nerves.” NeuroscienceNews. NeuroscienceNews, 26 October 2017.
<http://neurosciencenews.com/immune-cells-neuron-repair-7818/&gt;.

Abstract

Neutrophils Are Critical for Myelin Removal in a Peripheral Nerve Injury Model of Wallerian Degeneration

Wallerian degeneration (WD) is considered an essential preparatory stage to the process of axonal regeneration. In the peripheral nervous system, infiltrating monocyte-derived macrophages, which use the chemokine receptor CCR2 to gain entry to injured tissues from the bloodstream, are purportedly necessary for efficient WD. However, our laboratory has previously reported that myelin clearance in the injured sciatic nerve proceeds unhindered in the Ccr2−/− mouse model. Here, we extensively characterize WD in male Ccr2−/− mice and identify a compensatory mechanism of WD that is facilitated primarily by neutrophils. In response to the loss of CCR2, injured Ccr2−/− sciatic nerves demonstrate prolonged expression of neutrophil chemokines, a concomitant extended increase in the accumulation of neutrophils in the nerve, and elevated phagocytosis by neutrophils. Neutrophil depletion substantially inhibits myelin clearance after nerve injury in both male WT and Ccr2−/− mice, highlighting a novel role for these cells in peripheral nerve degeneration that spans genotypes.

SIGNIFICANCE STATEMENT 
The accepted view in the basic and clinical neurosciences is that the clearance of axonal and myelin debris after a nerve injury is directed primarily by inflammatory CCR2+ macrophages. However, we demonstrate that this clearance is nearly identical in WT and Ccr2−/− mice, and that neutrophils replace CCR2+ macrophages as the primary phagocytic cell. We find that neutrophils play a major role in myelin clearance not only in Ccr2−/− mice but also in WT mice, highlighting their necessity during nerve degeneration in the peripheral nervous system. These degeneration studies may propel improvements in nerve regeneration and draw critical parallels to mechanisms of nerve degeneration and regeneration in the CNS and in the context of peripheral neuropathies.

“Neutrophils Are Critical for Myelin Removal in a Peripheral Nerve Injury Model of Wallerian Degeneration” by Jane A. Lindborg, Matthias Mack and Richard E. Zigmond in Journal of Neuroscience. Published online October 25 2017 doi:10.1523/JNEUROSCI.2085-17.2017

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