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R C Aguilar

Publications and source records attributed to R C Aguilar.

6 recordsLinked to original sources

Monoclonal antibodies to human growth hormone modulate its biological properties.

Previous results indicated that monoclonal antibodies (mAbs) termed mAb AE5, mAb AC8 and mAb F11, recognizing the human growth hormone (hGH) region left exposed after binding to lactogenic, somatogenic and hGH-specific receptors, produce allosteric changes in the hormone which modify its binding properties. To study whether these mAbs could also influence hGH biological activity, experiments were carried out with Nb2 cells, a rat lymphoma cell line which proliferates in the presence of lactogenic hormones. Experiments involving previous binding of the hormone to receptors before adding 125I-mAbs indicated that the hGH domain defined by overlapped epitopes AE5, AC8 and F11 is uncovered in hGH when it is bound to the cell membranes. To reveal any alteration in the hGH molecule induced by the mAbs, preformed 125I-mAb:hGH complexes were added to the cell membranes. Data showed that 125I-mAb AE5:hGH complexes bound better to the receptors than free hormone. On the contrary, hGH previously bound to 125I-mAb AC8 or 125I-mAb F11 was poorly recognized by Nb2 receptors. Furthermore, both mAbs AC8 and F11 strongly inhibited 125I-hGH binding to Nb2 cell membranes and hGH-induced Nb2 cell proliferation whereas mAb AE5 enhanced both hormone binding and hGH mitogenic effect. Additionally, since mAb AC8 is directed towards an epitope shared by hGH and human placental lactogen (hPL), it was also shown that this mAb could impair hPL biological activity even though it recognizes the hPL region left exposed in hPL:Nb2 cell receptor complexes. Data presented in this work suggest that mAbs directed to the hGH or hPL regions unmasked after binding to Nb2 cell receptors produce allosteric alterations in the binding properties of these hormones leading to either enhancement or decrease of their biological activities.

Allosteric Regulation

Allosteric effects of monoclonal antibodies on human growth hormone.

We have previously shown that a monoclonal antibody (MAb) recognizing the human growth hormone (hGH) antigenic domain left exposed after binding to lactogenic receptors enhanced hGH binding probably through allosteric effects on the hormone binding site. Since receptors displaying different specificities would not recognize exactly the same hGH region, we explored whether some of our MAb could affect hGH binding to somatogenic receptors from rabbit liver and to human liver hGH-specific receptors. The effect of MAbAE5,AC8 and F11 on hGH binding was measured by determining the formation of 125I-MAb:hGH:receptor complexes using two different experimental approaches. Results from procedure A, which involved the previous binding of the hormone to microsomes before adding 125I-MAb, indicated that the hGH domain defined by epitopes AE5, AC8 and F11 is uncovered in the various hormone:receptor complexes. Procedure B was devised to reveal any alteration in the hGH molecule induced by the MAb. In this case performed 125I-MAb:hGH complexes were added to microsomes. Data showed that 125I-MAb AE5:hGH complexes bound better to the various receptors than 125I-MAb AE5 to hGH:receptor complexes. On the contrary, hGH previously bound to 125I-MAb AC8 or 125I-MAb F11 was less recognized by the receptors than the free hormone. Furthermore, binding of MAb AE5 or MAb F11 to hGH 20 K (a natural hGH variant lacking residues 32-46) also enhanced its affinity to the various receptors whereas MAb AC8 did not inhibit hGH 20 K binding. Results indicated that MAb recognizing the hGH antigenic area that remains unmasked after binding to different membrane-bound receptors are able to affect hormone binding site.(ABSTRACT TRUNCATED AT 250 WORDS)

Allosteric Regulation

Somatotropic and lactotropic receptors in transgenic mice expressing human or bovine growth hormone genes.

The somatotropic and lactotropic receptors were studied in liver microsomal preparations from transgenic mice carrying the human growth hormone (hGH) or bovine growth hormone (bGH) gene fused to mouse metallothionein-I (MT) or phosphoenolpyruvate carboxykinase promoter/regulator (PEPCK). Specificity studies indicated that, similarly to normal mice, liver microsomes from the transgenic animals possess a mixed population of somatotropic and lactotropic binding sites. In transgenic animals of both sexes, the binding capacity of somatotropic receptors was significantly increased without corresponding changes in affinity. Expression of the MT-hGH hybrid gene was associated with the induction of somatotropic receptors which was approximately twice as great as that measured in animals expressing the MT-bGH hybrid gene. The binding capacity of lactotropic receptors in liver microsomes (quantitated by the use of labelled ovine prolactin) was increased 2-3 fold in transgenic females and approximately 10-fold in transgenic males as compared to the respective normal controls. We conclude that lifelong excess of GH up-regulates hepatic GH and prolactin receptors, and that lactogenic activity of GH is not essential for induction of prolactin receptors in the liver of transgenic mice.

Animals

Identification of somatogenic binding sites in liver microsomes from normal mice and transgenic mice expressing human growth hormone gene.

Somatogenic binding sites were detected and characterized in microsomal preparations from livers of normal mice and mice expressing metallothionein-I/hGH (mMT/hGH) hybrid gene, using 125I-labelled bovine or human GH, or a photoreactive derivative of hGH (125I-AP-hGH1). Specific binding of 125I-bGH was detected in liver microsomes from both normal and transgenic mice with an apparent Kd of 2 nM. 125I-hGH was partially displaced by bGH. 125I-AP-hGH1 was covalently bound to the microsomal preparations, and bGH prevented the formation of the 130 kDa species with no appreciable effect on 63 kDa and 70 kDa lactogenic complexes.

Animals

MAPAG: a computer program to construct 2- and 3-dimensional antigenic maps.

The contact area between an antibody (Ab) and the antigen (Ag) is called antigenic determinant or epitope. The first step in the characterization of an Ag by using monoclonal antibodies (MAb) is to map the relative distribution of the corresponding epitopes on the Ag surface. The computer program MAPAG has been devised to automatically construct antigenic maps. MAPAG is fed with a binary matrix of experimental data indicating the ability of paired MAb to bind or not simultaneously to the Ag. The program is interactive menu-driven and allows the user an easy data handling. MAPAG utilizes iterative processes to construct and to adjust the final map, which is graphically shown as a 2- or a 3-dimensional model. Additionally, the antigenic map obtained can be optionally modified by the user or readjusted by the program. The suitability of MAPAG was illustrated by running experimental data from literature and comparing antigenic maps constructed by the program with those elaborated by the investigators without the assistance of a computer. Furthermore, since some MAb could present negative allosteric effects leading to misinterpretation of data, MAPAG has been provided with an approximate reasoning module to solve such anomalous situations. Results indicated that the program can be successfully employed as a simple, fast and reliable antigenic model-builder.

Algorithms