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Milligan, C.

Publications and source records attributed to Milligan, C..

2 recordsLinked to original sources

Enhancer-directed gene delivery for digit regeneration based on conserved epidermal factors

Limb loss remains a significant clinical challenge, but regenerative medicine approaches such as gene therapy offer a promising strategy to trigger endogenous regeneration programs. Optimal vector configurations and molecular targets for appendicular skeletal repair are not well defined. Here, we leveraged insights from species with a high endogenous capacity for appendage regeneration to design an enhancer-directed gene delivery platform that functions during mouse digit regeneration, a well characterized model for partial limb regeneration in mammals. Single-cell RNA sequencing of zebrafish caudal fin regeneration, combined with expression data in regenerating salamander limbs and mouse digit tips, implicated the SP family of transcription factors as conserved, epidermally-expressed mediators of appendage regrowth. Null mutants of Sp8 demonstrated impaired limb regeneration in salamanders, while conditional knockout of Sp6 and/or Sp8 in the mouse basal epidermis resulted in defective bony digit tip regeneration, involving an IL-17 mediated osteoclastogenic program. Spatiotemporally focused expression of FGF8, a known target of SP factors, using a zebrafish-derived tissue regeneration enhancer element via adeno-associated viral vectors, could partially rescue digit tip regeneration in SP knockout mice and accelerate digit regeneration in wildtype mice. Our results demonstrate a contextual gene therapy approach to address limb loss based on genes like SP transcription factors conserved across multiple contexts of appendage regeneration. Significance StatementInstructing regeneration of complex structures in mammals remains an unsolved problem. Gene therapy offers a compelling approach to foster endogenous regeneration by delivering therapeutic gene products to specific cells post injury. We identified a conserved regeneration-linked epidermal transcriptional program in mouse digit regeneration centered on the SP6 and SP8 transcription factors, involving inflammatory responses from osteoclasts. We engineered AAVs harboring a zebrafish tissue regeneration enhancer to direct FGF8 expression in the epidermis after amputation. This enhancer directed delivery partially rescued impaired digit regeneration in Sp6 and Sp8 conditional knockout mice and accelerated regrowth in wildtype digits. Our work links developmental signaling to adult regeneration and establishes a modular, injury site specific gene therapy framework that enables new interventions for limb healing.

genetics↗

Mitochondria-containing large extracellular vesicles target mouse motor neurons upon intramuscular injection

Amyotrophic Lateral Sclerosis (ALS) is a neurological disorder that causes progressive degeneration of motor neurons. Mitochondrial dysfunction accelerates neurodegeneration aggravating the severity of ALS. We hypothesized that increasing the mitochondrial function of motor neurons may promote neuronal survival. Therefore, we investigated the potential of neuron-derived mitochondria containing extracellular vehicles (EVs) as a novel therapeutic approach for ALS using differentiated NSC-34 cells as a surrogate for neurons. Neuron derived-large EVs (lEVs) but not small EVs (sEVs) contained mitochondria. However, we observed increased cell viability and oxygen consumption rates in heat-stressed neurons treated with both sEVs and lEVs suggesting improved mitochondrial function in recipient neurons. The increased oxygen consumption rates in sEV-treated heat-stressed neurons was accompanied by a greater proton leak compared to lEV treatment. The greater proton leak observed with sEVs likely suggests a lower efficiency of oxidative phosphorylation compared to that achieved by cells treated with mitochondria-containing lEVs. These findings suggest that mitochondrial components present in sEVs, such as proteins and mitochondrial DNA, may too contribute to improving cellular respiration. Furthermore, we have demonstrated that lEV mitochondria are transported into the lumbar spinal cord motor neurons following intramuscular injection in C57BL/6 mice in a EV dose-dependent manner. Collectively, for the first time, we have demonstrated the therapeutic effects of neuronal EVs in recipient heat-stressed neurons and the delivery of lEV mitochondria to spinal cord motor neurons in vivo without any EV surface modifications for neuronal targeting. Further studies will determine the therapeutic efficacy of mitochondria-containing EVs in the SOD1G93A transgenic mouse model of ALS. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=166 HEIGHT=200 SRC="FIGDIR/small/675842v1_ufig1.gif" ALT="Figure 1"> View larger version (52K): org.highwire.dtl.DTLVardef@af590aorg.highwire.dtl.DTLVardef@1fed11dorg.highwire.dtl.DTLVardef@52d339org.highwire.dtl.DTLVardef@1a97182_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗