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Biomedical subjects

F Viterbo

Publications and source records attributed to F Viterbo.

26 records · Page 2Linked to original sources

Facial bone lengthening apparatus with expander and miniplates.

Since 1869, bone lengthening has been pursued; when Langenbeck tried growing a shortened bone extremity utilizing for this an arteriovenous fistula in the thigh. At the beginning of this century, codovilla (1905) introduced bone lengthening methods for lower limbs.

Bone Lengthening↗

End-to-side neurorrhaphy with and without perineurium.

OBJECTIVE: We compared end-to-side neurorraphy with and without the perineural sheath. METHOD: Twenty rats were used. The peroneal nerve was sectioned and the distal end was sutured to the lateral face of the tibial nerve. We removed the perineural sheath only on the right side, but not on the left side. The proximal end of the peroneal nerve was curved back approximately at a 100 degrees angle and implanted into the adductor muscle. Six months later, the 14 surviving animals were submitted to electrophysiological tests, sacrificed, and the nerves and muscles were taken for histological exams. RESULTS: On the right side, the muscles that had positive response needed an average of 258.89 mV (+/- 92.31) of electric stimulus and on the left side 298.34 mV (+/- 139.32). The average weight of the tibial cranial muscles of the right side was 0.47 g (0.18) and for the left side 0.45 g (0.15). The distal end of the peroneal nerve showed averages of 310.29 (+/- 191.34) nerve fibers on the right side and 287.71 (+/- 183.60) on the left side. The tibial nerve above the neurorraphy showed averages of 939.46 (+/- 223.51) nerve fibers on the right side and 959.46 (+/- 327.48) on the left side. The tibial nerve below the neurorraphy showed averages of 935.17 (+/- 298.65) nerve fibers on the right side and 755.31 (+/- 323.26) on the left side. The average areas of the right tibial cranial muscles were 0.0162 m2 (+/- 0.008), after 230 magnification, and 0.0152 m2 (0.0064) for the left tibial cranial muscles. The histological features of the tibial cranial muscles, taking normal as 100%, were 78.21 (+/- 20.75) on the right side and 82.14 (+/- 15.89) on the left side. The statistical analysis (Student's t test) did not reveal any difference (p > 0.05) among right and left sides for all variables. CONCLUSION: The authors concluded that the two neurorraphies (with and without perineurium) did not show any difference regarding morphological and electrophysiological features studied.

Animals↗

Latero-terminal neurorrhaphy without removal of the epineural sheath. Experimental study in rats.

Termino-lateral neurorrhaphies have been used up to the beginning of this century. After this period, they have no longer been reported. We tested the efficacy of a new type of latero-terminal neurorrhaphy and evaluated the role of the epineural sheath. A group of 10 rats had the fibular nerve sectioned and the distal ending was sutured to the lateral face of the tibial nerve without removing the epineurium. All experiments were made on the right side, the left one remaining untouched in half of the animals of each group. The other half were denervated by sectioning and inverting the endings of the fibular nerves. In this way, tibial cranial muscles were either normal or denervated in the left side and reinnervated through latero-terminal neurorrhaphy in the right side. After 7.7 months, the animals were subjected to electrophysiological tests, sacrificed, and the nerves and muscles were taken for histological exams. A response of the tibial cranial muscle was obtained in 75% of the animals. The distal ending of the fibular nerve showed an average of 498 nerve fibers. The average areas of the reinnervated tibial cranial muscles were (mu 2):841.30 for M2n and 1798.33 for M2d. We concluded that the termino-lateral neurorrhaphy was functional, conducting electrical stimuli and allowing the passage of axons from the lateral surface of a healthy nerve, to reconstitute the distal segment of a sectioned nerve. The presence of the epineurium was no impediment to axonal regeneration or to the passage of electrical stimuli.(ABSTRACT TRUNCATED AT 250 WORDS)

Analysis of Variance↗

[Growth stimulus of the paranasal sinuses with tissue expanders].

Various congenital craniofacial deformities show hypoplastic paranasal sinus. The Treacher Collins, the Apert and Crouzon Syndromes and the Hemicraniofacial Microsomy, among others, are typical examples of this observation. Stimuli to the growth of the paranasal sinus during the facial growth period could sensibly improve the treatment of deformity, or even avoid later surgeries. Since their introduction in plastic surgery, tissue expanders are progressively acquiring greater importance in many areas of the specialty. This is a safe and simple alternative to solve difficult cases. It has been demonstrated that real tissue growth occurred in all layers of cutaneous tissues subjected to expansion, including the induction of mitoses. Recent works showed that microorbits could be corrected through the introduction of expanders in their orbits. The authors proposed that to stimulate the growth of paranasal sinus, tissue expanders should be introduced bilaterally in the maxillar, frontal, ethmoidal and sphenoidal sinus, which should promote the development of the face. The expansion induced should be controlled and gradual through injections of small amounts of saline in each session. This project includes the cautious design of the size and shape of the expanders as well as the care with adequate draining of the sinusal cavity and the possible mechanical atrophy of the mucosal lining of the sinus.

Humans↗