Bridging critical nerve defects through an acellular homograft seeded with autologous schwann cells obtained from a regeneration neuroma of the proximal stump.

J Reconstr Microsurg

Division of Plastic and Reconstructive Surgery, Department of Surgery, University of Vienna, School of Medicine, Vienna, Austria.

Published: April 2008

AI Article Synopsis

  • The study explored whether a hybrid graft with autologous Schwann cells on acellular grafts can help nerve regeneration in a rat model with critical nerve defects.
  • Despite Schwann cell transplantation showing successful regeneration over the entire distance, only sensory axons were able to persist, while motor function recovery was poor.
  • The findings indicate that using Schwann cells from the proximal stump neuroma may provide necessary support for nerve regeneration, but the outcomes for functional recovery were disappointing.

Article Abstract

Over the last decade, several models have investigated the usefulness of different biologic and/or synthetic matrices as alternatives to conventional nerve grafts. Still, axonal regeneration did not occur over longer (> 3 cm) distances. One problem may be that a growth-promoting environment not only includes physical cues but also a rich spectrum of different growth factors only provided by reactive Schwann cells. In the current study, we investigated whether a hybrid graft consisting of first-generation autologous Schwann cells seeded onto an acellular auto- or homograft can aid regeneration across a critical nerve defect in a rat model. In this paradigm, Schwann cells were not expanded in vitro but harvested from the proximal stump neuroma at the time of reconstruction and seeded into either an acellular homo- or autograft. Regeneration was then quantitated with functional muscle testing, regular histology, histomorphometry, and retrograde tracing techniques 12 weeks after reconstruction. Results showed successful regeneration over the entire distance regardless of whether Schwann cells were transplanted onto auto- or homologous acellular matrix. Schwann cells did populate both grafts; however, only sensory axons persisted through the entire distance. The functional outcome was dismal with no motor and poor sensory recovery. Control group C with homologous matrix only without Schwann cells showed no signs of directed axonal regeneration. Control group D with autologous reverse graft showed excellent recovery, as was expected. The present experiment sought to create a hybrid graft where the proximal stump neuroma is used as a biological resource for autologous Schwann cells that are seeded unto an acellular matrix, thus providing both physical and chemical support to regenerating axons. The results are encouraging in that successful regeneration was observed over the entire distance; however, only sensory axons had enough regenerative potential to also make end-organ contact. For motor axons, further refinements in conduit preparation have to be done.

Download full-text PDF

Source
http://dx.doi.org/10.1055/s-2008-1076091DOI Listing

Publication Analysis

Top Keywords

schwann cells
32
autologous schwann
12
proximal stump
12
seeded acellular
12
entire distance
12
critical nerve
8
schwann
8
cells
8
axonal regeneration
8
hybrid graft
8

Similar Publications

Peripheral neurodegenerative diseases induced by irreversible peripheral nerve degeneration (PND), such as diabetic peripheral neuropathy, have a high prevalence worldwide and reduce the quality of life. However, there is no agent effective against the irreversible PND. After peripheral nerve injury, Schwann cells play an important role in regulating PND.

View Article and Find Full Text PDF

NF1 encodes the multifunctional tumour suppressor protein, neurofibromin, which is best known for its causative role in Neurofibromatosis type 1 and in regulating MAPK signaling. Neurofibromin, in a context-specific manner, is involved in various tumorigenic processes, including those in melanocytes. This study investigated whether NF1 loss can collaborate with oncogenic GNAQ to promote melanoma in the dermis or eyes, where the G alpha q pathway is almost always activated.

View Article and Find Full Text PDF

Granular cell tumors are rare neoplasms originating from Schwann cells found in various organs. GCTs are seldom reported in the gastrointestinal tract. Pre-operative detection and diagnosis of colonic GCTs is challenging since the tumors are mainly asymptomatic, small, slow-growing, and submucosal.

View Article and Find Full Text PDF

Giant Granular Cell Tumor of the Left Thigh, a Rare Case Report and Literature Review.

Orthop Res Rev

January 2025

Department of Oncology, Xiangyang No. 1 People's Hospital, Hubei University of Medicine, Xiangyang, 441000, People's Republic of China.

Background: Granular cell tumor (GCT) is a rare soft tissue tumor characterized by Schwann cell differentiation. While GCT can occur in any part of the body, it is less common in the lower limbs. We report a case of a giant atypical GCT located in the left thigh, the tumor was initially small and painless at the time of discovery but gradually grew to 17 cm over a two-year period.

View Article and Find Full Text PDF

Seminal vesicle schwannoma with chronic hemorrhage.

Neurosciences (Riyadh)

January 2025

From the Department of Radiology (Li, Zhang), Department of Pathology (Yang), First People's Hospital of Yongkang City, Yongkang City, and from Jinhua Central Hospital (Ying), Jinhua City, Zhejiang Province, China.

Schwannomas are benign tumors originating from Schwann cells, with seminal vesicle schwannomas being exceedingly rare. This report describes a 54-year-old man with an incidental discovery of a right-sided seminal vesicle mass during a routine ultrasound examination. Further imaging, including MRI and contrast-enhanced CT scans, revealed a well-defined, encapsulated mass with heterogeneous signal intensity suggestive of schwannoma.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!