• LOGIN
    Login with username and password
Repository logo

BORIS Portal

Bern Open Repository and Information System

  • Publications
  • Theses
  • Research Data
  • Projects
  • Organizations
  • Researchers
  • More
  • Collections
  • Statistics
  • LOGIN
    Login with username and password
Repository logo
Unibern.ch
  1. Home
  2. Publications
  3. Engineered GM1 Intersects Between Mitochondrial and Synaptic Pathways to Ameliorate ALS Pathology.
 

Engineered GM1 Intersects Between Mitochondrial and Synaptic Pathways to Ameliorate ALS Pathology.

Options
  • Details
  • Files
BORIS DOI
10.48620/93594
Publisher DOI
10.1002/advs.202514128
PubMed ID
41489058
Description
Amyotrophic Lateral Sclerosis (ALS) is a progressive and fatal condition marked by the degeneration of motor neurons. ALS has been linked to numerous genes with diverse biological roles, reflecting a highly intricate and multifaceted disease process. This diversity poses significant challenges in developing universally effective and bioavailable treatments. Advancing therapeutic strategies require uncovering molecular pathways that are major drivers of ALS. We conducted proteomic analyses of human iPSC-derived motor neurons carrying C9ORF72 mutations, alongside spinal ventral horns from mice with pathogenic C9orf72-mutations. This cross-species approach revealed disruptions in synaptic vesicle release, endoplasmic reticulum (ER) and mitochondrial stress responses as conserved ALS pathogenic mechanisms. Disease progression was associated with accumulation of cytotoxic protein aggregates and oxidative stress. We analyzed the potential of GM1, an established neuroprotective molecule, to reverse these pathogenic features. To enhance the pharmacokinetics of GM1, we developed Talineuren (TLN), a nanoliposome-based formulation of the active pharmaceutical ingredient GM1 ganglioside that improves its bioavailability. GM1 stabilized mitochondrial Ca2⁺ handling, improved energy metabolism, and alleviated ER stress, preventing protein aggregation and restoring cellular proteostasis and counteracted behavioral deficits in C9orf72 and SOD1-G93A mouse models. Together, these findings underscore the central, convergent role for cellular disruptions in ALS and position TLN as a promising therapeutic candidate.
Date of Publication
2026-04
Publication Type
Article
Keyword(s)
C9ORF72
•
ER‐mitochondria contacts
•
GM1
•
SOD1‐G93A
•
amyotrophic lateral sclerosis (ALS)
•
mitochondrial dysfunction
•
nanoliposomal formulation
•
proteomics
•
synaptic dysfunction
Language(s)
en
Contributor(s)
Pilotto, Federica
Clinic of Neurology
Toth, Tristan Dellazizzo
Bond, Silvano
Tenlep, Sara Y Ngo
Schmitz, Alexander
Clinic of Neurology
Diab, Rim
Clinic of Neurology
Ngo Tenlep, Sara Y.
Mooney, Brian
Erni, Silvia
Schobesberger, Martina
Clinic of Neurology
Scheidegger, Olivierorcid-logo
Clinic of Neurology
Peitsch, Camille
Saxena, Smitaorcid-logo
Clinic of Neurology
Additional Credits
Clinic of Neurology
Series
Advanced Science
Publisher
Wiley
ISSN
2198-3844
Access(Rights)
open.access
Show full item
BORIS Portal
Bern Open Repository and Information System
Build: dd892c [ 9.04. 8:30]
Explore
  • Projects
  • Funding
  • Publications
  • Research Data
  • Organizations
  • Researchers
  • Audiovisual Material
  • Software & other digital items
  • Events
More
  • About BORIS Portal
  • Send Feedback
  • Cookie settings
  • Service Policy
Follow us on
  • Mastodon
  • YouTube
  • LinkedIn
UniBe logo