{"id":{"repo_id":"uthsc","oai_identifier":"oai:digitalcommons.library.tmc.edu:utgsbs_dissertations-2309"},"canonical_url":"https://search.dev.ndltd.org/etd/uthsc/oai:digitalcommons.library.tmc.edu:utgsbs_dissertations-2309","repository":{"repo_id":"uthsc","name":"University of Texas Health Science Center at Houston","base_url":"https://digitalcommons.library.tmc.edu/do/oai/"},"display":{"title":"Targeting Metabolic Alterations Associated With Smooth Muscle Α-Actin Pathogenic Variant Attenuates Moyamoya-Like Cerebrovascular Disease","abstract":"<p>Heterozygous pathogenic variants in <em>ACTA2</em>, encoding smooth muscle α-actin (α-SMA), predispose to thoracic aortic aneurysms and dissections. <em>De novo</em> missense variants disrupting <em>ACTA2 </em>arginine 179 (p.Arg179) cause a multisystemic disease termed smooth muscle dysfunction syndrome (SMDS), which is characterized by early onset thoracic aortic disease and moyamoya disease-like (MMD) cerebrovascular disease. The MMD-like cerebrovascular disease in SMDS patients is marked by bilateral steno-occlusive lesions in the distal internal carotid arteries (ICAs) and their branches. To study the molecular mechanisms that underlie the <em>ACTA2</em> p.Arg179 variants, a smooth muscle-specific Cre-lox knock-in mouse model of the heterozygous <em>Acta2 </em>R179C variant, termed the <em>Acta2</em><sup>SMC-R179C/+</sup> mouse model, was generated. <em>Acta2</em><sup>SMC-R179C/+</sup> mice exhibit mild hypotension, but do not have spontaneous aortic disease, strokes, or death up to two years of age. In the <em>Acta2</em><sup>SMC-R179C/+</sup> mouse model, 67% of the smooth muscle cells (SMCs) in the vasculature express the heterozygous <em>Acta2</em> R179C mutation. However, when SMCs are explanted from <em>Acta2</em><sup>SMC-R179C/+</sup> mouse aortas, the population is completely heterozygous for the mutation. Here, I show that <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs are not fully differentiated and proliferate and migrate faster than wild-type (WT) SMCs. Metabolic profiling identified that the <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs have increased glycolytic flux and decreased oxidative phosphorylation (OXPHOS), which is associated with reduced mitochondrial DNA and complex I activity, reflecting decreased electron transport chain activity. Nicotinamide riboside (NR), a NAD+ analogue, altered this metabolic profile. NR decreased glycolysis and increased OXPHOS by enhancing complex I activity without altering mitochondrial mass in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs. Furthermore, NR increased differentiation and decreased migration in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs.</p> <p>To determine how phenotypic changes in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs contribute to cerebrovascular disease, left carotid artery ligation (LCAL) was performed in these mice. One-fifth of <em>Acta2</em><sup>SMC-R179C/+ </sup>mice die immediately post-ligation due to ischemic strokes, whereas no WT mice died. The surviving mutant mice have persistent intraluminal lesions containing SMCs that resemble MMD lesions, which is consistent with increased migration observed in mutant SMCs, along with medial thinning and an enlarged lumen area proximal to the ligation site. In contrast, the WT mice show nearly patent lumens with medial thickening. Additionally, <em>Acta2</em><sup>SMC-R179C/+ </sup>mice display aberrant vascular remodeling consisting of increased neovascularization surrounding the left carotid artery, augmented leptomeningeal collateral remodeling, and greater post-occlusion stenosis in the large intracranial arteries when compared to the WT mice.</p> <p>To establish whether NR treatment alters outcomes in LCAL-injured <em>Acta2</em><sup>SMC-R179C/+ </sup>mice, mice were administered NR every other day beginning five days prior to the ligation injury. NR treatment prevented deaths post-ligation and improved the vascular remodeling in the mutant mice. Specifically, NR partially resolved the intraluminal left carotid artery lesions, reduced neovascularization surrounding the left carotid artery, attenuated leptomeningeal collateral remodeling, and increased patency of the large intracranial arteries distal to the ligation. Together, these results establish a novel role for glycolytic metabolism in driving vascular occlusive disease. These results also highlight the potential of increasing mitochondrial metabolism in SMCs to restore a differentiated and quiescent phenotype and attenuate MMD-like cerebrovascular occlusive lesions to prevent ischemic strokes in patients with SMDS.</p>","abstract_html":"&lt;p&gt;Heterozygous pathogenic variants in &lt;em&gt;ACTA2&lt;/em&gt;, encoding smooth muscle α-actin (α-SMA), predispose to thoracic aortic aneurysms and dissections. &lt;em&gt;De novo&lt;/em&gt; missense variants disrupting &lt;em&gt;ACTA2 &lt;/em&gt;arginine 179 (p.Arg179) cause a multisystemic disease termed smooth muscle dysfunction syndrome (SMDS), which is characterized by early onset thoracic aortic disease and moyamoya disease-like (MMD) cerebrovascular disease. The MMD-like cerebrovascular disease in SMDS patients is marked by bilateral steno-occlusive lesions in the distal internal carotid arteries (ICAs) and their branches. To study the molecular mechanisms that underlie the &lt;em&gt;ACTA2&lt;/em&gt; p.Arg179 variants, a smooth muscle-specific Cre-lox knock-in mouse model of the heterozygous &lt;em&gt;Acta2 &lt;/em&gt;R179C variant, termed the &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; mouse model, was generated. &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; mice exhibit mild hypotension, but do not have spontaneous aortic disease, strokes, or death up to two years of age. In the &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; mouse model, 67% of the smooth muscle cells (SMCs) in the vasculature express the heterozygous &lt;em&gt;Acta2&lt;/em&gt; R179C mutation. However, when SMCs are explanted from &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; mouse aortas, the population is completely heterozygous for the mutation. Here, I show that &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; SMCs are not fully differentiated and proliferate and migrate faster than wild-type (WT) SMCs. Metabolic profiling identified that the &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; SMCs have increased glycolytic flux and decreased oxidative phosphorylation (OXPHOS), which is associated with reduced mitochondrial DNA and complex I activity, reflecting decreased electron transport chain activity. Nicotinamide riboside (NR), a NAD+ analogue, altered this metabolic profile. NR decreased glycolysis and increased OXPHOS by enhancing complex I activity without altering mitochondrial mass in &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; SMCs. Furthermore, NR increased differentiation and decreased migration in &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; SMCs.&lt;/p&gt; &lt;p&gt;To determine how phenotypic changes in &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+&lt;/sup&gt; SMCs contribute to cerebrovascular disease, left carotid artery ligation (LCAL) was performed in these mice. One-fifth of &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+ &lt;/sup&gt;mice die immediately post-ligation due to ischemic strokes, whereas no WT mice died. The surviving mutant mice have persistent intraluminal lesions containing SMCs that resemble MMD lesions, which is consistent with increased migration observed in mutant SMCs, along with medial thinning and an enlarged lumen area proximal to the ligation site. In contrast, the WT mice show nearly patent lumens with medial thickening. Additionally, &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+ &lt;/sup&gt;mice display aberrant vascular remodeling consisting of increased neovascularization surrounding the left carotid artery, augmented leptomeningeal collateral remodeling, and greater post-occlusion stenosis in the large intracranial arteries when compared to the WT mice.&lt;/p&gt; &lt;p&gt;To establish whether NR treatment alters outcomes in LCAL-injured &lt;em&gt;Acta2&lt;/em&gt;&lt;sup&gt;SMC-R179C/+ &lt;/sup&gt;mice, mice were administered NR every other day beginning five days prior to the ligation injury. NR treatment prevented deaths post-ligation and improved the vascular remodeling in the mutant mice. Specifically, NR partially resolved the intraluminal left carotid artery lesions, reduced neovascularization surrounding the left carotid artery, attenuated leptomeningeal collateral remodeling, and increased patency of the large intracranial arteries distal to the ligation. Together, these results establish a novel role for glycolytic metabolism in driving vascular occlusive disease. These results also highlight the potential of increasing mitochondrial metabolism in SMCs to restore a differentiated and quiescent phenotype and attenuate MMD-like cerebrovascular occlusive lesions to prevent ischemic strokes in patients with SMDS.&lt;/p&gt;","abstract_has_math":false,"creators":["Kaw, Anita","<p>0000-0002-3690-711X</p>"],"institution":null,"degree_name":"Doctor of Philosophy (PhD)","degree_level":"Dissertation (PhD)","degree_discipline":null,"degree_department":null,"school":null,"contributors":["Dianna M. Milewicz, M.D., Ph.D.","Sean P. Marrelli, Ph.D.","Ketankumar Ghaghada, Ph.D."],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2023,"date_issued":"2023-05-01T07:00:00Z","date_published":"2023-05-01T07:00:00Z","updated_at":"2026-07-24T05:48:59Z","subjects":["genetics","mouse","models","stroke","cerebrovascular","acta2","moyamoya","pediatric","vascular","smooth","muscle","Animal Experimentation and Research","Biochemistry","Cardiology","Cardiovascular Diseases","Cell Biology","Laboratory and Basic Science Research","Molecular Biology","Molecular Genetics","Neurology","Translational Medical Research"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://digitalcommons.library.tmc.edu/utgsbs_dissertations/1252","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Dianna M. Milewicz, M.D., Ph.D.","Sean P. 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The MMD-like cerebrovascular disease in SMDS patients is marked by bilateral steno-occlusive lesions in the distal internal carotid arteries (ICAs) and their branches. To study the molecular mechanisms that underlie the <em>ACTA2</em> p.Arg179 variants, a smooth muscle-specific Cre-lox knock-in mouse model of the heterozygous <em>Acta2 </em>R179C variant, termed the <em>Acta2</em><sup>SMC-R179C/+</sup> mouse model, was generated. <em>Acta2</em><sup>SMC-R179C/+</sup> mice exhibit mild hypotension, but do not have spontaneous aortic disease, strokes, or death up to two years of age. In the <em>Acta2</em><sup>SMC-R179C/+</sup> mouse model, 67% of the smooth muscle cells (SMCs) in the vasculature express the heterozygous <em>Acta2</em> R179C mutation. However, when SMCs are explanted from <em>Acta2</em><sup>SMC-R179C/+</sup> mouse aortas, the population is completely heterozygous for the mutation. Here, I show that <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs are not fully differentiated and proliferate and migrate faster than wild-type (WT) SMCs. Metabolic profiling identified that the <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs have increased glycolytic flux and decreased oxidative phosphorylation (OXPHOS), which is associated with reduced mitochondrial DNA and complex I activity, reflecting decreased electron transport chain activity. Nicotinamide riboside (NR), a NAD+ analogue, altered this metabolic profile. NR decreased glycolysis and increased OXPHOS by enhancing complex I activity without altering mitochondrial mass in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs. Furthermore, NR increased differentiation and decreased migration in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs.</p> <p>To determine how phenotypic changes in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs contribute to cerebrovascular disease, left carotid artery ligation (LCAL) was performed in these mice. One-fifth of <em>Acta2</em><sup>SMC-R179C/+ </sup>mice die immediately post-ligation due to ischemic strokes, whereas no WT mice died. The surviving mutant mice have persistent intraluminal lesions containing SMCs that resemble MMD lesions, which is consistent with increased migration observed in mutant SMCs, along with medial thinning and an enlarged lumen area proximal to the ligation site. In contrast, the WT mice show nearly patent lumens with medial thickening. Additionally, <em>Acta2</em><sup>SMC-R179C/+ </sup>mice display aberrant vascular remodeling consisting of increased neovascularization surrounding the left carotid artery, augmented leptomeningeal collateral remodeling, and greater post-occlusion stenosis in the large intracranial arteries when compared to the WT mice.</p> <p>To establish whether NR treatment alters outcomes in LCAL-injured <em>Acta2</em><sup>SMC-R179C/+ </sup>mice, mice were administered NR every other day beginning five days prior to the ligation injury. NR treatment prevented deaths post-ligation and improved the vascular remodeling in the mutant mice. Specifically, NR partially resolved the intraluminal left carotid artery lesions, reduced neovascularization surrounding the left carotid artery, attenuated leptomeningeal collateral remodeling, and increased patency of the large intracranial arteries distal to the ligation. Together, these results establish a novel role for glycolytic metabolism in driving vascular occlusive disease. These results also highlight the potential of increasing mitochondrial metabolism in SMCs to restore a differentiated and quiescent phenotype and attenuate MMD-like cerebrovascular occlusive lesions to prevent ischemic strokes in patients with SMDS.</p>"]},{"key":"dc:title","label":"Title","values":["Targeting Metabolic Alterations Associated With Smooth Muscle Α-Actin Pathogenic Variant Attenuates Moyamoya-Like Cerebrovascular Disease"]}]}],"canonical_facts":{"dc:contributor":["Dianna M. Milewicz, M.D., Ph.D.","Sean P. Marrelli, Ph.D.","Ketankumar Ghaghada, Ph.D."],"dc:creator":["Kaw, Anita","<p>0000-0002-3690-711X</p>"],"dc:date.available":["2024-04-03T07:00:00Z"],"dc:description.abstract":["<p>Heterozygous pathogenic variants in <em>ACTA2</em>, encoding smooth muscle α-actin (α-SMA), predispose to thoracic aortic aneurysms and dissections. <em>De novo</em> missense variants disrupting <em>ACTA2 </em>arginine 179 (p.Arg179) cause a multisystemic disease termed smooth muscle dysfunction syndrome (SMDS), which is characterized by early onset thoracic aortic disease and moyamoya disease-like (MMD) cerebrovascular disease. The MMD-like cerebrovascular disease in SMDS patients is marked by bilateral steno-occlusive lesions in the distal internal carotid arteries (ICAs) and their branches. To study the molecular mechanisms that underlie the <em>ACTA2</em> p.Arg179 variants, a smooth muscle-specific Cre-lox knock-in mouse model of the heterozygous <em>Acta2 </em>R179C variant, termed the <em>Acta2</em><sup>SMC-R179C/+</sup> mouse model, was generated. <em>Acta2</em><sup>SMC-R179C/+</sup> mice exhibit mild hypotension, but do not have spontaneous aortic disease, strokes, or death up to two years of age. In the <em>Acta2</em><sup>SMC-R179C/+</sup> mouse model, 67% of the smooth muscle cells (SMCs) in the vasculature express the heterozygous <em>Acta2</em> R179C mutation. However, when SMCs are explanted from <em>Acta2</em><sup>SMC-R179C/+</sup> mouse aortas, the population is completely heterozygous for the mutation. Here, I show that <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs are not fully differentiated and proliferate and migrate faster than wild-type (WT) SMCs. Metabolic profiling identified that the <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs have increased glycolytic flux and decreased oxidative phosphorylation (OXPHOS), which is associated with reduced mitochondrial DNA and complex I activity, reflecting decreased electron transport chain activity. Nicotinamide riboside (NR), a NAD+ analogue, altered this metabolic profile. NR decreased glycolysis and increased OXPHOS by enhancing complex I activity without altering mitochondrial mass in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs. Furthermore, NR increased differentiation and decreased migration in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs.</p> <p>To determine how phenotypic changes in <em>Acta2</em><sup>SMC-R179C/+</sup> SMCs contribute to cerebrovascular disease, left carotid artery ligation (LCAL) was performed in these mice. One-fifth of <em>Acta2</em><sup>SMC-R179C/+ </sup>mice die immediately post-ligation due to ischemic strokes, whereas no WT mice died. The surviving mutant mice have persistent intraluminal lesions containing SMCs that resemble MMD lesions, which is consistent with increased migration observed in mutant SMCs, along with medial thinning and an enlarged lumen area proximal to the ligation site. In contrast, the WT mice show nearly patent lumens with medial thickening. Additionally, <em>Acta2</em><sup>SMC-R179C/+ </sup>mice display aberrant vascular remodeling consisting of increased neovascularization surrounding the left carotid artery, augmented leptomeningeal collateral remodeling, and greater post-occlusion stenosis in the large intracranial arteries when compared to the WT mice.</p> <p>To establish whether NR treatment alters outcomes in LCAL-injured <em>Acta2</em><sup>SMC-R179C/+ </sup>mice, mice were administered NR every other day beginning five days prior to the ligation injury. NR treatment prevented deaths post-ligation and improved the vascular remodeling in the mutant mice. Specifically, NR partially resolved the intraluminal left carotid artery lesions, reduced neovascularization surrounding the left carotid artery, attenuated leptomeningeal collateral remodeling, and increased patency of the large intracranial arteries distal to the ligation. Together, these results establish a novel role for glycolytic metabolism in driving vascular occlusive disease. These results also highlight the potential of increasing mitochondrial metabolism in SMCs to restore a differentiated and quiescent phenotype and attenuate MMD-like cerebrovascular occlusive lesions to prevent ischemic strokes in patients with SMDS.</p>"],"dc:identifier":["https://digitalcommons.library.tmc.edu/utgsbs_dissertations/1252"],"dc:subject":["genetics","mouse","models","stroke","cerebrovascular","acta2","moyamoya","pediatric","vascular","smooth","muscle","Animal Experimentation and Research","Biochemistry","Cardiology","Cardiovascular Diseases","Cell Biology","Laboratory and Basic Science Research","Molecular Biology","Molecular Genetics","Neurology","Translational Medical Research"],"dc:title":["Targeting Metabolic Alterations Associated With Smooth Muscle Α-Actin Pathogenic Variant Attenuates Moyamoya-Like Cerebrovascular Disease"],"thesis:degree_level":["Dissertation (PhD)"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T05:48:59Z"}