Laporta Jimena, Keil Kimberly P, Weaver Samantha R, Cronick Callyssa M, Prichard Austin P, Crenshaw Thomas D, Heyne Galen W, Vezina Chad M, Lipinski Robert J, Hernandez Laura L
Departments of Dairy Science (J.L., S.R.W., C.M.C., A.P.P., L.L.H.), Comparative Biosciences (K.P.K., G.W.H., C.M.V., R.J.L.), and Animal Science (T.D.C.), University of Wisconsin-Madison, Madison, Wisconsin 53706.
Mol Endocrinol. 2014 Nov;28(11):1866-74. doi: 10.1210/me.2014-1204. Epub 2014 Sep 5.
Calcium homeostasis during lactation is critical for maternal and neonatal health. We previously showed that nonneuronal/peripheral serotonin [5-hydroxytryptamine (5-HT)] causes the lactating mammary gland to synthesize and secrete PTHrP in an acute fashion. Here, using a mouse model, we found that genetic inactivation of tryptophan hydroxylase 1 (Tph1), which catalyzes the rate-limiting step in peripheral 5-HT synthesis, reduced circulating and mammary PTHrP expression, osteoclast activity, and maternal circulating calcium concentrations during the transition from pregnancy to lactation. Tph1 inactivation also reduced sonic hedgehog signaling in the mammary gland during lactation. Each of these deficiencies was rescued by daily injections of 5-hydroxy-L-tryptophan (an immediate precursor of 5-HT) to Tph1-deficient dams. We used immortalized mouse embryonic fibroblasts to demonstrate that 5-HT induces PTHrP through a sonic hedgehog-dependent signal transduction mechanism. We also found that 5-HT altered DNA methylation of the Shh gene locus, leading to transcriptional initiation at an alternate start site and formation of a variant transcript in mouse embryonic fibroblasts in vitro and in mammary tissue in vivo. These results support a new paradigm of 5-HT-mediated Shh regulation involving DNA methylation remodeling and promoter switching. In addition to having immediate implications for lactation biology, identification and characterization of a novel functional regulatory relationship between nonneuronal 5-HT, hedgehog signaling, and PTHrP offers new avenues for the study of these important factors in development and disease.
哺乳期的钙稳态对母体和新生儿健康至关重要。我们先前表明,非神经元/外周血清素[5-羟色胺(5-HT)]可使哺乳期乳腺以急性方式合成并分泌甲状旁腺激素相关蛋白(PTHrP)。在此,我们使用小鼠模型发现,催化外周5-HT合成限速步骤的色氨酸羟化酶1(Tph1)基因失活,会降低从妊娠到哺乳期过渡期间的循环和乳腺PTHrP表达、破骨细胞活性以及母体循环钙浓度。Tph1失活还会降低哺乳期乳腺中的音猬因子信号传导。通过每天给Tph1缺陷型母鼠注射5-羟基-L-色氨酸(5-HT的直接前体),可挽救上述每种缺陷。我们使用永生化小鼠胚胎成纤维细胞证明,5-HT通过音猬因子依赖性信号转导机制诱导PTHrP。我们还发现,5-HT改变了Shh基因座的DNA甲基化,导致在体外小鼠胚胎成纤维细胞和体内乳腺组织中,在一个替代起始位点开始转录并形成一个变体转录本。这些结果支持了一种新的5-HT介导的Shh调节范式,涉及DNA甲基化重塑和启动子切换。除了对泌乳生物学有直接影响外,鉴定和表征非神经元5-HT、刺猬信号传导和PTHrP之间新的功能调节关系,为研究这些在发育和疾病中的重要因素提供了新途径。