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A M deVos

Publications and source records attributed to A M deVos.

3 recordsLinked to original sources

The molecular basis for growth hormone-receptor interactions.

High-resolution mutational and structural analyses of purified components have revealed a great deal about the molecular basis for growth hormone action. The structural and functional aspects of the interactions between hGH and its receptors have been largely elaborated. From these studies it has been possible to engineer homologues of hGH to bind to the hGH receptor and act as potential antagonists. Receptor-selective and high-affinity analogs have also been constructed based on a combination of alanine scanning and monovalent phage display. From this molecular work much has been revealed about the biology of hGH (Fig.9). Our data suggest that hGH is stored in the pituitary as a (Zn2+,hGH)2 complex. On release from somatotropic vesicles it dissociates into a monomeric form and reveals its primary receptor binding site (site 1). Free hGH can bind to the hGHbp in serum to form monomeric or dimeric complexes that slow the clearance of hGH (Moore et al., 1989). However, because the affinity for the full-length receptor is greater, hGH can bind to it preferentially. Furthermore, the constitutive levels of the hGHbp (approximately 0.5 to 1 nM) (Baumann et al., 1986; Herrington et al., 1986) are considerably below the levels of hGH after pulsatile release (approximately 2 to 5 nM) (Thompson et al., 1972). Our data indicate that hGH binds to the hGH receptor on cell membranes through site 1 and subsequently forms dimers through site 2. We believe a similar process may occur for hGH to activate the hPRL receptor, except that Zn2+ is required for site 1 association. Such receptor dimers are then activated and capable of interacting with other cellular components that may mediate the hGH "signal." Recently, based upon this proposed mechanism, we produced potent antagonists to the hGH receptor (Fuh et al., 1992) and hPRL receptor (G. Fuh, P. Colosi, W. Wood, and J. Wells, unpublished results). These antagonists bind tightly to site 1 but are blocked in their ability to bind site 2 and dimerize the receptor. We believe these methods and discoveries will be relevant to the study of signaling by other hematopoietic hormones and receptors as well as other hormones and receptors.

Amino Acid Sequence↗

Molecular switch for signal transduction: structural differences between active and inactive forms of protooncogenic ras proteins.

Ras proteins participate as a molecular switch in the early steps of the signal transduction pathway that is associated with cell growth and differentiation. When the protein is in its GTP complexed form it is active in signal transduction, whereas it is inactive in its GDP complexed form. A comparison of eight three-dimensional structures of ras proteins in four different crystal lattices, five with a nonhydrolyzable GTP analog and three with GDP, reveals that the "on" and "off" states of the switch are distinguished by conformational differences that span a length of more than 40 A, and are induced by the gamma-phosphate. The most significant differences are localized in two regions: residues 30 to 38 (the switch I region) in the second loop and residues 60 to 76 (the switch II region) consisting of the fourth loop and the short alpha-helix that follows the loop. Both regions are highly exposed and form a continuous strip on the molecular surface most likely to be the recognition sites for the effector and receptor molecule(or molecules). The conformational differences also provide a structural basis for understanding the biological and biochemical changes of the proteins due to oncogenic mutations, autophosphorylation, and GTP hydrolysis, and for understanding the interactions with other proteins.

Binding Sites↗

Crystal structure of an active form of RAS protein, a complex of a GTP analog and the HRAS p21 catalytic domain.

Normal RAS proteins play a key role of molecular switch in the transduction of the growth signal from extracellular to intracellular space. The state of the switch is "on" when GTP is bound and "off" when GDP is bound to the protein. The crystal structure of a complex between a nonhydrolyzable GTP analog and the catalytic domain of a RAS protein has been determined by a rotation-translation search method. The orientations and positions of four independent molecules have been determined using a single molecule as a probe in the search. The crystal structure reveals that the gamma phosphate of the GTP analog induces extensive conformational changes on two loop regions of the protein.

Amino Acid Sequence↗