Parathyroid hormone regulates calcium and bone metabolism by controlling critical functions of target cells in bone and kidney. These actions of the hormone were formerly attributed entirely to stimulation of adenylate cyclase, but functional analysis of the recently cloned PTH/PTHrp receptor has confirmed that this single receptor can transduce multiple intracellular signals, including increases in cyclic AMP, diacylglycerol, inositol polyphosphates and cytosolic free calcium. The ultimate functional correlates of this signalling diversity are poorly understood, however, because the links between individual second messengers and PTH regulation of specific distal biologic responses, such as growth, gene transcription, enzyme activity and ion transport, have not been clearly established. The importance of interactions between these various second messengers; their modulation by other hormones, growth factors or cytokines; and the possible influence of different schedules of hormone administration upon the patterns of hormonal responsiveness also remain unsettled. Recent advances in the development of signal-specific PTH analogs, coupled with the availability of native and mutant PTH receptor cDNAs, have inspired new experimental approaches to these issues. This Subproject will address two major unresolved questions concerning the cellular actions of PTH: (1) how do individual second messengers elicited by the hormone influence specific distal functions of target cells - i.e. do different signals principally regulate distinct subsets of PTH responses in these cells? and (2) how are PTH responses in target cells influenced by the temporal pattern of hormone exposure - are specific signalling mechanisms or biologic responses regulated differently by continuous vs. intermittent (or pulsatile) PTH administration? by using mutant PTH ligands, mutant PTH receptors and mutant renal and osteoblastic target cells to selectively activate, or block, specific PTH signalling events in vitro, the links between generation of individual second messengers and specific distal cellular effects of the hormone will be defined. In the case of osteoblasts, particular emphasis will be placed upon distinguishing those signals that mediate """"""""anabolic"""""""" vs. """"""""catabolic"""""""" effects of PTH on bone. To gain insight into the mechanisms whereby intermittent and continuous PTH administration in vivo lead to dramatically different effects upon bone mass perifusion techniques will be used to compare the effects of continuous vs. intermittent or pulsatile PTH exposure upon cells expressing either normal PTH/PTHrp receptors or mutant receptors that cannot transduce specific messenger signals. Confirmation of key findings in transformed osteosarcoma-cell models will be sought using primary bone cells from normal mice or from gene-ablated mice that are homozygous for PTH receptor deficiency and in which mutant PTH receptors have been """"""""transplaced"""""""" in vivo or in vitro. By defining the functional consequences of individual signals transduced by PTH receptors in target cells, these studies will provide the information needed for rational design of signal-specific PTH analogs with novel spectra of action in kidney and bone. They may also suggest new pharmacokinetic approaches that, together with such novel PTH analogs, could ultimately enable highly selective systemic control of bone turnover and mineral metabolism.

Project Start
Project End
Budget Start
Budget End
Support Year
29
Fiscal Year
1996
Total Cost
Indirect Cost
Christov, Marta; Clark, Abbe R; Corbin, Braden et al. (2018) Inducible podocyte-specific deletion of CTCF drives progressive kidney disease and bone abnormalities. JCI Insight 3:
Dedic, Christopher; Hung, Tin Shing; Shipley, Alan M et al. (2018) Calcium fluxes at the bone/plasma interface: Acute effects of parathyroid hormone (PTH) and targeted deletion of PTH/PTH-related peptide (PTHrP) receptor in the osteocytes. Bone 116:135-143
Mizuhashi, Koji; Ono, Wanida; Matsushita, Yuki et al. (2018) Resting zone of the growth plate houses a unique class of skeletal stem cells. Nature 563:254-258
Hanna, Patrick; Grybek, Virginie; Perez de Nanclares, Guiomar et al. (2018) Genetic and Epigenetic Defects at the GNAS Locus Lead to Distinct Patterns of Skeletal Growth but Similar Early-Onset Obesity. J Bone Miner Res 33:1480-1488
Wein, Marc N; Foretz, Marc; Fisher, David E et al. (2018) Salt-Inducible Kinases: Physiology, Regulation by cAMP, and Therapeutic Potential. Trends Endocrinol Metab 29:723-735
Bastepe, Murat (2018) GNAS mutations and heterotopic ossification. Bone 109:80-85
Roszko, Kelly L; Bi, Ruiye; Gorvin, Caroline M et al. (2017) Knockin mouse with mutant G?11 mimics human inherited hypocalcemia and is rescued by pharmacologic inhibitors. JCI Insight 2:e91079
Grigelioniene, Giedre; Nevalainen, Pasi I; Reyes, Monica et al. (2017) A Large Inversion Involving GNAS Exon A/B and All Exons Encoding Gs? Is Associated With Autosomal Dominant Pseudohypoparathyroidism Type Ib (PHP1B). J Bone Miner Res 32:776-783
Balani, Deepak H; Ono, Noriaki; Kronenberg, Henry M (2017) Parathyroid hormone regulates fates of murine osteoblast precursors in vivo. J Clin Invest 127:3327-3338
Cheloha, Ross W; Chen, Bingming; Kumar, Niyanta N et al. (2017) Development of Potent, Protease-Resistant Agonists of the Parathyroid Hormone Receptor with Broad ? Residue Distribution. J Med Chem 60:8816-8833

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