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result(s) for
"Henao-Mejia, Jorge"
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miR‐181a/b downregulation exerts a protective action on mitochondrial disease models
by
Carrella, Sabrina
,
Tammaro, Roberta
,
Flavell, Richard A
in
Animal models
,
Animals
,
Autophagy - genetics
2019
Mitochondrial diseases (MDs) are a heterogeneous group of devastating and often fatal disorders due to defective oxidative phosphorylation. Despite the recent advances in mitochondrial medicine, effective therapies are still not available for these conditions. Here, we demonstrate that the microRNAs miR‐181a and miR‐181b (miR‐181a/b) regulate key genes involved in mitochondrial biogenesis and function and that downregulation of these miRNAs enhances mitochondrial turnover in the retina through the coordinated activation of mitochondrial biogenesis and mitophagy. We thus tested the effect of miR‐181a/b inactivation in different animal models of MDs, such as microphthalmia with linear skin lesions and Leber's hereditary optic neuropathy. We found that miR‐181a/b downregulation strongly protects retinal neurons from cell death and significantly ameliorates the disease phenotype in all tested models. Altogether, our results demonstrate that miR‐181a/b regulate mitochondrial homeostasis and that these miRNAs may be effective gene‐independent therapeutic targets for MDs characterized by neuronal degeneration.
Synopsis
MicroRNAs 181a/b is important for mitochondria homeostasis in the retina. miR‐181a/b inactivation in different animal models of mitochondrial diseases protects neuronal degeneration and ameliorates the disease phenotype in tested models.
miR‐181a/b control mitochondrial biogenesis in the retina and their downregulation enhances mitochondrial turnover through the coordinated activation of mitochondrial biogenesis and mitophagy.
miR‐181a/b inhibition protects neurons from cell death and ameliorates the phenotype of different
in vivo
models of mitochondrial disease, i.e. such as Microphthalmia with Linear Skin Lesions (MLS) and Leber Hereditary Optic Neuropathy (LHON).
miR‐181a/b may represent effective gene‐independent therapeutic targets for genetically heterogeneous mitochondrial diseases characterized by neuronal degeneration.
Graphical Abstract
MicroRNAs 181a/b is important for mitochondria homeostasis in the retina. miR‐181a/b inactivation in different animal models of mitochondrial diseases protects neuronal degeneration and ameliorates the disease phenotype in tested models.
Journal Article
The DNA-sensing AIM2 inflammasome controls radiation-induced cell death and tissue injury
by
Tong, Jiyu
,
Elinav, Eran
,
Ouyang, Xinshou
in
Animals
,
Apoptosis - radiation effects
,
Bone marrow
2016
Acute exposure to ionizing radiation induces massive cell death and severe damage to tissues containing actively proliferating cells, including bone marrow and the gastrointestinal tract. However, the cellular and molecular mechanisms underlying this pathology remain controversial. Here, we show that mice deficient in the double-stranded DNA sensor AIM2 are protected from both subtotal body irradiation-induced gastrointestinal syndrome and total body irradiation-induced hematopoietic failure. AIM2 mediates the caspase-1-dependent death of intestinal epithelial cells and bone marrow cells in response to double-strand DNA breaks caused by ionizing radiation and chemotherapeutic agents. Mechanistically, we found that AIM2 senses radiation-induced DNA damage in the nucleus to mediate inflammasome activation and cell death. Our results suggest that AIM2 may be a new therapeutic target for ionizing radiation exposure.
Journal Article
Topological organization of multichromosomal regions by the long intergenic noncoding RNA Firre
2014
A long intergenic noncoding RNA, Firre, is now shown to localize to a domain across its own chromosomal locus and to distinct interacting transchromosomal loci in mouse and human cells. In addition, Firre interacts with nuclear-matrix factor hnRNPU. These results lead to a model in which Firre functions as a nuclear-organization factor modulating the topological organization of multiple chromosomes.
RNA, including long noncoding RNA (lncRNA), is known to be an abundant and important structural component of the nuclear matrix. However, the molecular identities, functional roles and localization dynamics of lncRNAs that influence nuclear architecture remain poorly understood. Here, we describe one lncRNA, Firre, that interacts with the nuclear-matrix factor hnRNPU through a 156-bp repeating sequence and localizes across an ~5-Mb domain on the X chromosome. We further observed Firre localization across five distinct
trans
-chromosomal loci, which reside in spatial proximity to the
Firre
genomic locus on the X chromosome. Both genetic deletion of the
Firre
locus and knockdown of hnRNPU resulted in loss of colocalization of these
trans
-chromosomal interacting loci. Thus, our data suggest a model in which lncRNAs such as Firre can interface with and modulate nuclear architecture across chromosomes.
Journal Article
Endothelial TLR4 and the microbiome drive cerebral cavernous malformations
2017
Cerebral cavernous malformations (CCMs) are a cause of stroke and seizure for which no effective medical therapies yet exist. CCMs arise from the loss of an adaptor complex that negatively regulates MEKK3–KLF2/4 signalling in brain endothelial cells, but upstream activators of this disease pathway have yet to be identified. Here we identify endothelial Toll-like receptor 4 (TLR4) and the gut microbiome as critical stimulants of CCM formation. Activation of TLR4 by Gram-negative bacteria or lipopolysaccharide accelerates CCM formation, and genetic or pharmacologic blockade of TLR4 signalling prevents CCM formation in mice. Polymorphisms that increase expression of the
TLR4
gene or the gene encoding its co-receptor CD14 are associated with higher CCM lesion burden in humans. Germ-free mice are protected from CCM formation, and a single course of antibiotics permanently alters CCM susceptibility in mice. These studies identify unexpected roles for the microbiome and innate immune signalling in the pathogenesis of a cerebrovascular disease, as well as strategies for its treatment.
Lipopolysaccharide derived from gut bacteria can accelerate the formation of cerebral cavernous malformations by activating TLR4 on endothelial cells, and polymorphisms that increase expression of the genes encoding TLR4 or its co-receptor CD14 are associated with higher CCM lesion burden in humans.
Microbiome driven cerebral malformations
Cerebral cavernous malformations (CCMs) are malformations of the vascular system, seen mainly in the brain where they can cause haemorrhagic stroke and seizures. CCMs arise from loss-of-function mutations in components of a complex that negatively regulates MEKK3–KLF2/4 signalling and Rho/ROCK signalling in brain endothelial cells. Mark Kahn and colleagues now identify upstream regulators that activate this pathway in brain endothelial cells. They find that lipopolysaccharide derived from gut bacteria can accelerate CCM formation by activating TLR4 on endothelial cells. The authors further show that polymorphisms in the
TLR4
gene or
CD14
, the gene encoding its co-receptor, are associated with higher CCM lesion burden in humans. These findings suggest that the gut microbiome and TLR4 are important drivers of CCMs and represent potential therapeutic targets.
Journal Article
The long non-coding RNA Morrbid regulates Bim and short-lived myeloid cell lifespan
2016
The long non-coding RNA
Morrbid
controls myeloid cell lifespan and regulates apoptosis by repressing the adjacent pro-apoptotic
Bcl2l11
gene in
cis
.
Keeping myeloid cells on a tight leash
Neutrophils, eosinophils and 'classical' monocytes are a first line of defense against pathogens, but their actions can also cause inflammatory diseases. It is important that the lifespan of these myeloid cells is regulated in order to minimize deleterious effects. Jorge Henao-Mejia and colleagues show here that a long non-coding RNA termed
Morrbid
specifically controls the lifespan of short-lived myeloid cells by regulating expression of the pro-apoptotic
Bcl2l11
(
Bim
) gene.
MORRBID
is present in humans and is highly upregulated in human hypereosinophilic diseases, so its inhibition may represent a novel therapeutic approach in pathologies influenced by altered myeloid lifespan.
Neutrophils, eosinophils and ‘classical’ monocytes collectively account for about 70% of human blood leukocytes and are among the shortest-lived cells in the body
1
,
2
. Precise regulation of the lifespan of these myeloid cells is critical to maintain protective immune responses and minimize the deleterious consequences of prolonged inflammation
1
,
2
. However, how the lifespan of these cells is strictly controlled remains largely unknown. Here we identify a long non-coding RNA that we termed
Morrbid
, which tightly controls the survival of neutrophils, eosinophils and classical monocytes in response to pro-survival cytokines in mice. To control the lifespan of these cells,
Morrbid
regulates the transcription of the neighbouring pro-apoptotic gene,
Bcl2l11
(also known as
Bim
), by promoting the enrichment of the PRC2 complex at the
Bcl2l11
promoter to maintain this gene in a poised state. Notably,
Morrbid
regulates this process in
cis
, enabling allele-specific control of
Bcl2l11
transcription. Thus, in these highly inflammatory cells, changes in
Morrbid
levels provide a locus-specific regulatory mechanism that allows rapid control of apoptosis in response to extracellular pro-survival signals. As
MORRBID
is present in humans and dysregulated in individuals with hypereosinophilic syndrome, this long non-coding RNA may represent a potential therapeutic target for inflammatory disorders characterized by aberrant short-lived myeloid cell lifespan.
Journal Article
Deleting the mitochondrial respiration negative regulator MCJ enhances the efficacy of CD8+ T cell adoptive therapies in pre-clinical studies
2024
Mitochondrial respiration is essential for the survival and function of T cells used in adoptive cellular therapies. However, strategies that specifically enhance mitochondrial respiration to promote T cell function remain limited. Here, we investigate methylation-controlled J protein (MCJ), an endogenous negative regulator of mitochondrial complex I expressed in CD8 cells, as a target for improving the efficacy of adoptive T cell therapies. We demonstrate that MCJ inhibits mitochondrial respiration in murine CD8
+
CAR-T cells and that deletion of MCJ increases their in vitro and in vivo efficacy against murine B cell leukaemia. Similarly, MCJ deletion in ovalbumin (OVA)-specific CD8
+
T cells also increases their efficacy against established OVA-expressing melanoma tumors in vivo. Furthermore, we show for the first time that MCJ is expressed in human CD8 cells and that the level of MCJ expression correlates with the functional activity of CD8
+
CAR-T cells. Silencing MCJ expression in human CD8 CAR-T cells increases their mitochondrial metabolism and enhances their anti-tumor activity. Thus, targeting MCJ may represent a potential therapeutic strategy to increase mitochondrial metabolism and improve the efficacy of adoptive T cell therapies.
Treatment failure following chimaeric antigen receptor (CAR) T cell therapy is common yet incompletely understood. In this study, the authors demonstrate that deletion of the mitochondrial negative regulator, MCJ, in CAR T cells promotes target cell killing ex vivo and augments their efficacy in an in vivo B cell leukaemia model.
Journal Article
miR-181b regulates vascular stiffness age dependently in part by regulating TGF-β signaling
by
Santhanam, Lakshmi
,
Hori, Daijiro
,
Dunkerly-Eyring, Brittany
in
Aging
,
Aging - genetics
,
Anesthesiology
2017
Endothelial dysfunction and arterial stiffening play major roles in cardiovascular diseases. The critical role for the miR-181 family in vascular inflammation has been documented. Here we tested whether the miR-181 family can influence the pathogenesis of hypertension and vascular stiffening.
qPCR data showed a significant decrease in miR-181b expression in the aorta of the older mice. Eight miR-181a1/b1-/- mice and wild types (C57BL6J:WT) were followed weekly for pulse wave velocity (PWV) and blood pressure measurements. After 20 weeks, the mice were tested for endothelial function and aortic modulus. There was a progressive increase in PWV and higher systolic blood pressure in miR-181a1/b1-/- mice compared with WTs. At 21 weeks, aortic modulus was significantly greater in the miR-181a1/b1-/- group, and serum TGF-β was found to be elevated at this time. A luciferase reporter assay confirmed miR-181b targets TGF-βi (TGF-β induced) in the aortic VSMCs. In contrast, wire myography revealed unaltered endothelial function along with higher nitric oxide production in the miR-181a1/b1-/- group. Cultured VECs and VSMCs from the mouse aorta showed more secreted TGF-β in VSMCs of the miR-181a1/b1-/- group; whereas, no change was observed from VECs. Circulating levels of angiotensin II were similar in both groups. Treatment with losartan (0.6 g/L) prevented the increase in PWV, blood pressure, and vascular stiffness in miR-181a1/b1-/- mice. Immunohistochemistry and western blot for p-SMAD2/3 validated the inhibitory effect of losartan on TGF-β signaling in miR-181a1/b1-/- mice.
Decreased miR-181b with aging plays a critical role in ECM remodeling by removing the brake on the TGF-β, pSMAD2/3 pathway.
Journal Article
Multiscale 3D genome organization underlies ILC2 ontogenesis and allergic airway inflammation
by
Chandra, Aditi
,
Henao-Mejia, Jorge
,
Michieletto, Michaël F.
in
631/250/2502
,
631/250/2504/2506
,
Biomedical and Life Sciences
2023
Innate lymphoid cells (ILCs) are well-characterized immune cells that play key roles in host defense and tissue homeostasis. Yet, how the three-dimensional (3D) genome organization underlies the development and functions of ILCs is unknown. Herein, we carried out an integrative analysis of the 3D genome structure, chromatin accessibility and gene expression in mature ILCs. Our results revealed that the local 3D configuration of the genome is rewired specifically at loci associated with ILC biology to promote their development and functional differentiation. Importantly, we demonstrated that the ontogenesis of ILC2s and the progression of allergic airway inflammation are determined by a unique local 3D configuration of the region containing the ILC-lineage-defining factor
Id2
, which is characterized by multiple interactions between the
Id2
promoter and distal regulatory elements bound by the transcription factors GATA-3 and RORα, unveiling the mechanism whereby the
Id2
expression is specifically controlled in group 2 ILCs.
Henao-Mejia and colleagues provide a detailed characterization of the 3D genome architecture of ILCs and demonstrate that ILC2 development and progression of allergic inflammation are controlled by a unique 3D DNA topology at the
Id2
locus.
Journal Article
Myeloid-derived miR-6236 potentiates adipocyte insulin signaling and prevents hyperglycemia during obesity
by
Henao-Mejia, Jorge
,
McCright, Sam J.
,
Joannas, Leonel D.
in
38/91
,
631/250/2504/342
,
631/337/384/331
2024
Adipose tissue macrophages (ATMs) influence obesity-associated metabolic dysfunction, but the mechanisms by which they do so are not well understood. We show that miR-6236 is a bona fide miRNA that is secreted by ATMs during obesity. Global or myeloid cell-specific deletion of miR-6236 aggravates obesity-associated adipose tissue insulin resistance, hyperglycemia, hyperinsulinemia, and hyperlipidemia. miR-6236 augments adipocyte insulin sensitivity by inhibiting translation of negative regulators of insulin signaling, including PTEN. The human genome harbors a miR-6236 homolog that is highly expressed in the serum and adipose tissue of obese people. hsa-MIR-6236 expression negatively correlates with hyperglycemia and glucose intolerance, and positively correlates with insulin sensitivity. Together, our findings establish miR-6236 as an ATM-secreted miRNA that potentiates adipocyte insulin signaling and protects against metabolic dysfunction during obesity.
Macrophages are critical regulators of adipose tissue homeostasis and function, though the mechanisms by which they impart these effects are unknown. Here, the authors show that Mir6236 is secreted by adipose tissue macrophages and regulates adipocyte insulin resistance and organismal metabolism during obesity.
Journal Article
TRIM2, a novel member of the antiviral family, limits New World arenavirus entry
by
Lavanya, Madakasira
,
Sarute, Nicolas
,
Henao-Mejia, Jorge
in
Animals
,
Antigens, Differentiation - genetics
,
Antigens, Differentiation - immunology
2019
Tripartite motif (TRIM) proteins belong to a large family with many roles in host biology, including restricting virus infection. Here, we found that TRIM2, which has been implicated in cases of Charcot-Marie-Tooth disease (CMTD) in humans, acts by blocking hemorrhagic fever New World arenavirus (NWA) entry into cells. We show that Trim2-knockout mice, as well as primary fibroblasts from a CMTD patient with mutations in TRIM2, are more highly infected by the NWAs Junín and Tacaribe virus than wild-type mice or cells are. Using mice with different Trim2 gene deletions and TRIM2 mutant constructs, we demonstrate that its antiviral activity is uniquely independent of the RING domain encoding ubiquitin ligase activity. Finally, we show that one member of the TRIM2 interactome, signal regulatory protein α (SIRPA), a known inhibitor of phagocytosis, also restricts NWA infection and conversely that TRIM2 limits phagocytosis of apoptotic cells. In addition to demonstrating a novel antiviral mechanism for TRIM proteins, these studies suggest that the NWA entry and phagocytosis pathways overlap.
Journal Article