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Biomedical subjects

N B Kinderman

Publications and source records attributed to N B Kinderman.

9 recordsLinked to original sources

Androgenic regulation of the central glia response following nerve damage.

Current research on the effects of gonadal steroids on the brain and spinal cord indicates that these agents have profound trophic effects on many aspects of neuronal functioning, including cell survival, growth and metabolism, elaboration of processes, synaptogenesis, and neurotransmission (Jones et al., 1985; Luine, 1985; Nordeen et al., 1985; Matsumoto et al., 1988a,b; Gould et al., 1990). Since many of the aspects of normal neuronal functioning altered by gonadal steroids are affected by injury to the nervous system, we initiated a series of experiments designed to exploit the trophic capabilities of steroids as therapeutic agents in neuronal injury and repair (Kujawa et al., 1989, 1991; Kujawa and Jones, 1990). Three steroid-sensitive model systems were used for these studies: the hamster facial motoneuron, the rat sciatic motoneuron, and the hamster rubrospinal motoneuron. The results of our initial series of experiments suggest that androgens, and possibly estrogens, act either directly or indirectly on the injured motoneuron and enhance elements of the neuronal reparative response that are critical to successful recovery of function. Recently, we discovered that gonadal steroids may also modulate the central glia response to nerve damage. In this review, a summary of our data identifying a therapeutic role for androgens in enhancing the reparative response of motoneurons to injury is presented. This is followed by a discussion of the effects of androgens on the glial response to injury.

Androgens↗

Ribosomal RNA transcriptional activation and processing in hamster facial motoneurons: effects of axotomy with or without exposure to testosterone.

A key step in the ability of neurons to survive injury and successfully regenerate involves ribosomal RNA production. Testosterone propionate (TP), augments facial nerve regeneration in the adult hamster. TP modulates the nucleolar reaction in injured facial motoneurons, such that mature ribosome levels increase more rapidly and in greater magnitude than with injury only. In this study, molecular and electron microscopic stereologic approaches were used to determine the effects of axotomy and steroid treatment on ribosomal transcription and processing in facial motoneurons. Castrated adult male hamsters were subjected to right facial nerve transection at the stylomastoid foramen. Half the animals were subcutaneously implanted with one Silastic TP capsule, with the remainder sham implanted. For the in situ hybridization experiments, postoperative survival times were 0.5, 2, or 6 hours. In situ hybridization with a ribosomal DNA probe specific to the external transcribed spacer region located at the 5' end of the ribosomal gene was accomplished. Transcriptional activation of the rRNA gene occurred rapidly, within 2 hours, after injury only. Unexpectedly, TP treatment did not alter the time course or magnitude of rRNA transcriptional activity. For the electron microscope experiments, the postoperative time of 12 hours was selected. Stereologic analysis of 3 nucleolar subcomponents, fibrillar centers (site of rRNA transcription), nucleolonema (site of rRNA processing), and granular material (site of preribosome storage), was accomplished. TP decreased the nucleolonemal strands and the granular material, relative to injury only. These results suggest that, although rRNA transcription is rapidly activated by axotomy, rRNA processing is temporarily stalled. TP does not affect the early, axotomy-induced transcriptional activation of the ribosomal gene, but may, instead, prevent the subsequent disruption in rRNA processing. An hypothesis for the molecular mechanism by which steroids augment the regenerative capabilities of injured facial motoneurons is presented.

Animals↗

Alterations in glial fibrillary acidic protein (GFAP) mRNA levels in the hamster facial motor nucleus: effects of axotomy and testosterone.

Testosterone propionate (TP) administered at the time of facial nerve injury in the hamster accelerates the rate of regeneration. In this study, we tested the hypothesis that the mechanism by which TP augments peripheral nerve regeneration involves regulation of glial fibrillary acidic protein (GFAP) mRNA in the facial motor nucleus. Castrated male hamsters were subjected to right facial nerve transection, with half the animals implanted subcutaneously with Silastic capsules containing exogenous TP and the remainder sham implanted. Postoperative survival times were 0.25, 1, 2, 4, 7, and 14 d. Qualitative/quantitative analyses of both film and emulsion autoradiograms were accomplished. Axotomy, with or without TP, resulted in a dramatic increase in GFAP mRNA levels by 1 d post-operative on the axotomized side, relative to controls. GFAP mRNA levels remained elevated throughout all postoperative times in both the nonhormone- and TP-treated animals. Qualitative examination of the film autoradiograms indicated a generalized decrease in the amount of GFAP mRNA in the control and axotomized nuclei of TP-treated animals when compared to the control and axotomized nuclei, respectively, of nonhormone-treated animals. Statistical comparison of the values obtained for both the film and emulsion autoradiograms confirmed this impression. Thus, while the injury-induced increases in GFAP mRNA expression were not blocked by TP, the overall extent of the increase was significantly tempered by steroid treatment. These data suggest that hormonal modulation of the astrocytic response to peripheral nerve injury may be a contributing factor in the ability of steroids to enhance the regenerative capacities of injured motor neurons.

Animals↗

Axotomy-induced changes in ribosomal RNA levels in female hamster facial motoneurons: differential effects of gender and androgen exposure.

Following facial nerve injury, female hamster facial motoneurons (HFMN) regenerate faster than their male counterparts. Testosterone propionate (TP) markedly accelerates the rate of facial nerve regeneration in males, but has a relatively reduced effect in females. In the present study, we utilized in situ hybridization in conjunction with ribosomal DNA probes to test the hypothesis that in females HFMN axotomy produces a less dramatic cell body response than in males and to examine gender differences in the effects of steroids on peripheral nerve regeneration at the molecular level. The results indicate that in females axotomy alone induced moderate increases in rRNA levels, beginning 2 days postoperatively. These changes were both slower in onset and lower in magnitude than those in the males. TP augmented the effects of axotomy on rRNA levels at the later postoperative times. There were no early, rapid effects of TP, like those observed in males. These molecular data substantiate our previous findings of inherent sex differences in neuronal regeneration and the ability of gonadal steroids to augment the reparative response of peripheral neurons to injury.

Animals↗

Testosterone enhancement of the nerve cell body response to injury: evidence using in situ hybridization and ribosomal DNA probes.

In axotomized peripheral motoneurons capable of successful regeneration, one of the earliest morphological indicators of the injury response occurs within the nucleolus. In the initial part of this investigation, we mapped the nucleolar response of injured adult hamster facial motoneurons from a molecular perspective, utilizing in situ hybridization and ribosomal DNA probes complementary to stable rRNA. Recently, we have discovered that the gonadal steroid, testosterone propionate (TP), accelerates recovery from facial paralysis in the hamster by increasing the rate of regeneration of the fastest regrowing axons. In the second part of this study, the hypothesis that TP accomplishes these effects on facial nerve regeneration through an enhancement of the nerve cell body response to injury was tested using in situ hybridization and rDNA probes. Adult intact male hamsters were subjected to right facial nerve axotomies at the stylomastoid foramen. One-half of the axotomized animals received subcutaneous implants of TP, with the remainder sham implanted. In situ hybridization with tritiated rDNA probes was accomplished and levels of hybridizable rRNA assessed both qualitatively and quantitatively. Axotomy alone induced an upregulation in rRNA levels, with peak changes occurring by 24 hr postoperative and continuing through postoperative day 4. These molecular changes in the nucleolar response preceded, by a full day, any morphological signs of the nucleolar reactive pattern previously found in this cell type, and, as such, point to the usefulness of in situ hybridization as a tool to identify the earliest events associated with the axon reaction. A secondary smaller increase in rRNA levels was observed during the later stages of regeneration. TP significantly augmented the ribosomal response to injury, with levels of rRNA increased as early as 6 hr and the magnitude of the response greater than that occurring following axotomy alone. These results provide the first mechanistic step in the identification of the cellular processes underlying gonadal steroid augmentation of neuronal reparative processes. We conclude that TP accelerates the "switch" from a normal to a reparative state and suggest that this priming effect may be causally related to the differential effects of TP on the regenerative properties of this cell type.

Animals↗

Testosterone effects on ribosomal RNA levels in injured peripheral motor neurons: a preliminary report.

We have previously demonstrated that administration of testosterone to hamsters during the early phases of axonal regeneration following facial nerve injury accelerates both the rate of regeneration of the fastest growing population of axons and the return of functional movement. We hypothesized from those studies that testosterone primes the neuronal cell body in such a way as to accelerate the "switch" from a normal to a reparative state. That hypothesis was tested in this study using ribosomal DNA (rDNA) probes in conjunction with in situ hybridization to map the molecular response of the polymerase I system to axotomy, with and without hormone exposure. Adult male hamsters were subjected to right facial nerve severance, with the left side serving as an internal control. Half the animals were administered testosterone propionate via subcutaneous implants. In situ hybridization using a genomic rDNA probe complementary to the 28S rRNA species was accomplished, and levels of rRNA in injured facial neurons assessed both qualitatively and quantitatively. Our initial findings indicate that testosterone markedly upregulates rRNA levels after injury, and support the hypothesis of an acceleration in the metabolic switch to a reparative state. This leads us, in turn, to suggest that this effect of testosterone on the ribosomal system is causally related to the increase in axonal regeneration rate and return of functional movement previously documented in this system.

Animals↗

Testosterone-induced acceleration of recovery from facial paralysis following crush axotomy of the facial nerve in male hamsters.

In this study, the effects of testosterone propionate (TP) on recovery from facial paralysis following crush axotomy of the facial nerve in male hamsters were examined. In the first experiment, TP (5 mg/ml sesame oil; 0.1 ml) was injected subcutaneously and on alternate days in one-half of the animals subjected to crush axotomies of the facial nerve, with the second half receiving vehicle alone. An accelerative effect of TP on recovery from facial paralysis was observed near the end of the first and beginning of the second week after crush axotomy. When the dosage and frequency were doubled in the next experiment, a greater accelerative effect of TP on recovery from facial paralysis was observed. In the last experiment, castrated animals were used in order to eliminate the endogenous source of the hormone and two different modes of hormone administration, TP implants vs TP injections, were compared. The results of that experiment indicate that continuous exposure to the hormone, in the form of subcutaneous implants of 100% crystalline TP, had the most pronounced effect on acceleration of recovery from facial paralysis. In addition, no differences in the responses of the castrated, axotomized animals and the normal, axotomized animals were found. This suggests that the presence of endogenous hormone contributes little to the acceleration of functional recovery observed with TP. Finally, the time course of the accelerative effect of TP suggests that the hormone is acting primarily at the level of the facial neuron, which contains androgen receptors, and perhaps secondarily at the level of the facial muscles, which are also known to contain androgen receptors.

Animals↗

Ultrastructural changes in the developing nucleolus following axotomy.

A large, basophilic, Feulgen-negative structure has been observed within the nucleoli of golden hamster facial motor neurons. This 'intranucleolar body' was seen, at the electron microscopic level, to be composed of granules which are thought to be ribonucleoprotein particles. At 15 days postnatal age, this aggregation of granules had not yet be appeared. However, by 20--24 days, a small intranucleolar body had developed. At maturity, the intranucleolar body had a diameter of up to 2 mum. Facial nerve axotomy at 15 days did not appreciably alter the nucleolar morphology at 19 days; neither control (opposite side) nor experimental nucleoli contained intranucleolar bodies. Normal nucleoli developed intranucleolar bodies, however, between the ages of 20 and 24 days. After axotomy at 20 days and sacrifice at 24 days, a comparison of facial neuronal nucleoli demonstrated that while an intranucleolar body formed in the control, axotomy prevented this structure from forming at its normal time. Also, when the facial nerve of an adult hamster was axotomized and observed 4 days postoperatively, an intact intranucleolar body was not seen. Instead, the granular portions of the nucleolus appeared to have been dispersed into several small aggregates. We believe that the changes observed in granule distribution, both with development and after axotomy, are morphological indications of a qualitative and/or a quantitative change in rRNA synthesis.

Age Factors↗

A nucleolus-associated coiled body.

One or two healthy structures frequently have been observed attached to nucleoli in facial motor neurons of the golden hamster. These round-to-oval structures, called "coiled bodies", were seen at 15, 19, and 24 days postnatal and in the adult, both in normal neurons and in chromatolytic neurons which had been axotomized 4 days previously. With one exception, the coiled bodies were seen to be attached via fibrillar material to the nucleolar periphery. Although the numbers of coiled bodies may be altered during neuronal maturation and as a result of axon section, the bodies revealed no structural alterations that could be attributed to developmental age or to experimental trauma.

Age Factors↗