Inflammatory changes in peripheral organs in the BACHD murine model of Huntington's disease
LIFE SCIENCES
Authors: Costa Valadao, Priscila Aparecida; Oliveira, Bruna da Silva; Joviano-Santos, Julliane V.; Marciano Vieira, Erica Leandro; Rocha, Natalia Pessoa; Teixeira, Antonio Lucio; Guatimosim, Cristina; de Miranda, Aline Silva
Abstract
Huntington's disease (HD) is a neurodegenerative disease caused by a CAG repeat expansion in the gene encoding the huntingtin protein (HTT). This expansion leads to the formation of mutant huntingtin protein (mHTT) that is expressed in many body tissue cells. The mHTT interacts with several molecular pathways within different cell types, affecting the regulation of the immune system cells. It is still very limited the understanding of the immune changes in peripheral tissues in HD. Herein, we investigated the levels of inflammatory and regulatory cytokines in peripheral organs (i.e. kidney, heart, liver and spleen) of the 12-month-old BACHD model of HD. This robust murine model closely resembles the human disease. We found significant changes in cytokine levels in all organs analyzed. Increased levels of IL-6 were found in the kidney, while levels of IL-6 and IL-12p70 were increased in the heart of BACHD mice in comparison with wild-type (WT) animals. In the liver, we observed enhanced IL-12p70 and TNF-alpha levels. In the spleen, there was an increase in the levels of IL-4 and a decrease in the levels of IL-5 and IL-6 in BACHD compared to WT. Our findings provide the first evidence that the BACHD model also exhibits immune changes in peripheral organs, opening an avenue for the investigation of the potential role played by peripheral inflammatory response in HD. Further studies are needed to systematically address the mechanisms and pathways underlying immune signaling in peripheral organs in HD.
Hypomorphic mutation of the mouse Huntington's disease gene orthologue
PLOS GENETICS
Authors: Murthy, Vidya; Tebaldi, Toma; Yoshida, Toshimi; Erdin, Serkan; Calzonetti, Teresa; Vijayvargia, Ravi; Tripathi, Takshashila; Kerschbamer, Emanuela; Seong, Ihn Sik; Quattrone, Alessandro; Talkowski, Michael E.; Gusella, James F.; Georgopoulos, Katia; MacDonald, Marcy E.; Biagioli, Marta
Abstract
Rare individuals with inactivating mutations in the Huntington's disease gene (HTT) exhibit variable abnormalities that imply essential HTT roles during organ development. Here we report phenotypes produced when increasingly severe hypomorphic mutations in the murine HTT orthologue Htt, (Hdh(neoQ20), Hdh(neoQ50), Hdh(neoQ111)), were placed over a null allele (Hdh(ex4/5)). The most severe hypomorphic allele failed to rescue null lethality at gastrulation, while the intermediate, though still severe, alleles yielded recessive perinatal lethality and a variety of fetal abnormalities affecting body size, skin, skeletal and ear formation, and transient defects in hematopoiesis. Comparative molecular analysis of wild-type and Htt-null retinoic acid-differentiated cells revealed gene network dysregulation associated with organ development that nominate polycomb repressive complexes and miRNAs as molecular mediators. Together these findings demonstrate that Htt is required both pre- and post-gastrulation to support normal development. Author summary The HTT gene mutated in Huntington's Disease (HD) has essential roles during normal development. However, still not fully understood are the functional consequences of its partial inactivation. Our genetic study provides a comprehensive description of the effects of progressively more severe decreases in expression of Htt, the murine HTT counterpart. The most severe Htt decrease leads to lethality of early embryos, while intermediate but still severely reduced Htt dosages yield a variety of recessively inherited developmental abnormalities affecting body size, skin, skeletal and ear formation, and hematopoiesis. Comparative molecular analysis of differentiating wild-type cells and cells lacking Htt function further elucidate genes networks dysregulated during organ development. These nominate chromatin regulators and short non-coding RNAs as key molecular mediators. Together these findings demonstrate that Htt is required from conception to support normal embryonic and fetal development.