Importance:Approximately 2% of amyotrophic lateral sclerosis (ALS) cases are attributable to a pathogenic variant in the superoxide dismutase 1 (SOD1) gene. Tofersen, an intrathecal antisense oligonucleotide designed to reduce SOD1 protein synthesis, is the first and only approved therapy for the treatment of ALS in adults who have a variant in the SOD1 gene. Objective:To evaluate the long-term effects of tofersen in adults with SOD1-ALS. Design, Setting, and Participants:The phase 3, randomized, double-blind, placebo-controlled VALOR trial (A Study to Evaluate Efficacy, Safety, Tolerability, Pharmacokinetics and Pharmacodynamics of Tofersen in SOD1-ALS; conducted from March 2019 to July 2021) evaluated tofersen use over 28 weeks in adults (18 years and older) with weaknesses attributable to ALS and a confirmed SOD1 pathogenic variant at 32 sites in 10 countries; participants could then enroll in an open-label extension (OLE; completed August 2024). Intervention and Exposure:Adults with SOD1-ALS were randomly assigned 2:1 to receive tofersen (100 mg) or placebo over a 24-week period in the VALOR study. All participants in the OLE were treated with tofersen. Main Outcomes and Measures:Integrated analysis of VALOR and the OLE study aimed to compare early start vs placebo/delayed start (approximately 6 months later) treatment with tofersen. Key efficacy end points included measures of axonal injury and neurodegeneration (neurofilament), function and strength, quality of life, and survival. Results:VALOR enrolled 108 participants with 42 unique SOD1 pathogenic variants (mean [SD] age: placebo/delayed-start group 51.2 [11.6] [n = 36]; early-start group: 48.1 [12.6] [n = 72]) with 19 (53%) and 43 (60%) of participants being male in the placebo/delayed- and early-start groups, respectively. Overall, 95/108 participants (88%) enrolled in the OLE, and 46 participants completed the OLE (early-start group, 34 [47%]; placebo/delayed-start group, 12 [33%]). At OLE completion, participants could have accumulated 3.5 years or more (range, 192-276 weeks) of follow-up from the start of VALOR. Over 148 weeks, earlier initiation of tofersen (compared to later initiation) was associated with numerically less decline in measures of clinical function (Amyotrophic Lateral Sclerosis Functional Rating Scale-Revised score, -9.9 vs -13.5 points), respiratory function (slow vital capacity, -13.8% vs -18.1%), muscle strength (handheld dynamometry megascore, -0.38 vs -0.43 points), and quality of life (Amyotrophic Lateral Sclerosis Assessment Questionnaire 5 score, 17.0 vs 22.5 points; EuroQol 5 Dimension, 5 Level Questionnaire score, -0.1 vs -0.2 points). Tofersen prolonged survival relative to the expected natural history of SOD1-ALS. Most adverse events were consistent with ALS progression or known procedural adverse effects. All serious neurological adverse events were reversible; few led to tofersen discontinuation. Conclusions and Relevance:Final data from VALOR and the OLE demonstrated the benefit of tofersen in SOD1-ALS and provide clear rationale for its use in this population. Trial Registration:ClinicalTrials.gov Identifier: VALOR NCT02623699; OLE NCT03070119.
There is currently no consensus on how to define recovery for individuals with amyotrophic lateral sclerosis (ALS). Tofersen treatment for superoxide dismutase-1-related (SOD1) ALS marks a pivot in clinical management: for the first time, clinicians can target disease stabilization and functional recovery in some individuals. This advancement shifts the focus of ALS care toward optimizing functional recovery alongside symptomatic management. However, there are no evidence-based guidelines for prescribing neuromuscular rehabilitation (NMR) to improve functional recovery. Building on our preliminary single-center data of integrated NMR with tofersen, we propose a new ALS Recovery Model System of Care, utilizing a hub-and-spoke infrastructure to combine NMR with novel therapies. This model aims to define ALS recovery, characterize recovery profiles, standardize NMR protocols, and establish a rehabilitation framework adaptable to future disease-stabilizing therapies.
INTRODUCTION/AIMS:Serum neurofilament light chain (NfL) is a promising diagnostic biomarker for differentiating amyotrophic lateral sclerosis (ALS) from clinical mimics. This study assessed the utility of integrating serum NfL into current diagnostic criteria to enhance diagnostic certainty in patients with a provisional ALS diagnosis who were confirmed as having ALS at follow-up. METHODS:We conducted a single-center, retrospective study of consecutive patients with a provisional ALS diagnosis at their initial visit at the WashU Medicine ALS Center. All underwent electrodiagnostic testing and serum NfL measurement via SIMOA using an HD-X analyzer (Quanterix). Elevated serum NfL was defined with a cutoff of 38 pg/mL. RESULTS:The study included 43 patients with a provisional ALS diagnosis (29 men [67.4%]; median age, 63 years [range, 36-80 years]). At follow-up, 27/43 (62.8%) patients progressed to definite ALS. Serum NfL was elevated in 34/43 (79.1%) of the total cohort and 24/27 (88.9%) of those who progressed to definite ALS. Integrating serum NfL with Gold Coast Criteria (GCC) was associated with a tenfold increase in the odds of identifying patients likely to progress to definite ALS (OR 10 [1.39, 71.87], p = 0.02). DISCUSSION:Our results suggest that serum NfL is a robust complement to current ALS diagnostic criteria and shows potential to improve early identification and diagnostic certainty of patients likely to progress to definite ALS. Integrating serum NfL with GCC provided the strongest predictive model. These findings warrant larger multicenter, prospective studies to confirm results.
Importance:Tofersen is a disease-modifying antisense oligonucleotide therapeutic for people living with SOD1-amyotrophic lateral sclerosis (SOD1-ALS). Autopsy tissue donors have provided the first opportunity to study the distribution of intrathecally administered tofersen in human central nervous system tissues. Objectives:To determine the tissue distribution of tofersen and to provide the first estimates of SOD1 reduction in human somatic motor systems tissues. Design, Setting, and Participants:This was a cross-sectional autopsy tissue case series conducted between 2018 and 2026. Autopsies were performed at 3 US academic medical institutions. Tissue samples from 8 deceased patients who lived with SOD1-ALS, participated in tofersen clinical trials (ClinicalTrials.gov Identifiers NCT02623699 [An Efficacy, Safety, Tolerability, Pharmacokinetics and Pharmacodynamics Study of BIIB067 (Tofersen) in Adults With Inherited Amyotrophic Lateral Sclerosis (ALS)] and NCT03070119 [Long-Term Evaluation of BIIB067 (Tofersen)]) or the Expanded Access Program, and whose families authorized autopsies were eligible for this study. All autopsy tissue donors known at the time of this study were included (none were excluded). Analyses were conducted between August 2020 and January 2026. Exposures:Participants received multiple intrathecal 20- to 100-mg tofersen doses. Main Outcomes and Measures:Tofersen tissue concentrations were measured using hybridization enzyme-linked immunosorbent assay (ELISA). SOD1 messenger RNA (mRNA) and protein reduction estimates, defined as percentage SOD1 levels in this study's recently treated autopsy tissue donors compared to a cohort of samples from tofersen-naive SOD1-ALS autopsy tissue donors, were measured using quantitative reverse transcription polymerase chain reaction (PCR) and ELISA. Histological localization of tofersen and SOD1 transcripts were studied using immunohistochemistry and in situ hybridization assays. Results:In 8 tofersen-treated autopsy tissue donors (5 male and 3 female donors; age range, 42-66 years), spinal cord and motor cortical tissue tofersen concentrations strongly correlated with predictions based on individual dosing histories and a preclinical pharmacokinetic model. For 3 recently treated autopsy tissue donors, reductions in lumbar spinal cord tissue SOD1 mRNA and protein levels ranged from 45% to 84% despite not having been administered 1 to 2 scheduled doses before autopsy. Residual somatic motor neurons demonstrated tofersen transduction and low SOD1 mRNA probe hybridization. Misfolded SOD1 protein inclusions were detected in residual motor neurons of tofersen-naive SOD1-ALS tissue donor controls and tofersen-treated tissue donors. Meningeal and perivascular lymphocytic immune responses were observed in 5 recently treated tissue donors but were not apparent in tissue donors with remote final tofersen doses. Conclusions and Relevance:This case series presents the first emerging autopsy tissue data confirming the predicted distribution of tofersen and robust SOD1 protein reduction in human somatic motor systems tissues.
INTRODUCTION/AIMS:Tofersen is approved for the treatment of amyotrophic lateral sclerosis (ALS) due to superoxide dismutase 1 mutations (SOD1-ALS). Here we report serious neurologic adverse events (AEs) that occurred in the tofersen clinical trials in people with SOD1-ALS. METHODS:Serious neurologic AEs of myelitis, radiculitis, aseptic meningitis, and papilledema reported in the tofersen clinical trials are described. Serious AEs were defined according to International Conference for Harmonization guidelines, and neurologic AEs in clinical trials were diagnosed by investigators based on symptoms, clinical examination findings, and diagnostic workup. RESULTS:Ten participants (approximately 7% of tofersen 100-mg-treated trial participants) experienced a total of 12 serious neurologic AEs-4 of myelitis, 2 of radiculitis, 2 of aseptic meningitis, and 4 of intracranial hypertension (ICH) and/or papilledema. All events but one resolved either spontaneously, with dosing interruption/modification, or with concomitant therapies. One event was ongoing but improved as of December 2022. While 3 events led to tofersen treatment discontinuation, all other participants were able to remain on treatment. No event was life-threatening or fatal. DISCUSSION:Some antisense oligonucleotides (ASOs) have been described as having pro-inflammatory properties. Aseptic meningitis has been reported with nusinersen; however, myelitis, radiculitis, increased intracranial pressure, and papilledema have not been reported with ASO treatment. These neurologic AEs should be considered when assessing the overall benefit/risk of tofersen treatment for SOD1-ALS. Safety data from the open-label extension and expanded access program will continue to characterize these events and further inform the safety profile of tofersen in SOD1-ALS.
Autonomic disorders disrupt homeostasis and cause symptoms such as orthostatic hypotension, urinary urgency, bladder overfilling, sexual dysfunction, constipation, and gastroparesis. Pathophysiologic mechanisms include neurodegeneration, autoimmunity, toxic exposure, medication-induced, and an array of others. Despite the lack of disease-modifying treatments for the most common etiologies, there is a plethora of therapeutic options available to treat the manifestations of dysautonomia. Here we review established and recent therapeutic strategies available for dysautonomia. We also provide a general schema to approach the management of this class of disorders in the clinical setting. New emerging neuromodulatory devices are showing promise in treating dysautonomic orthostatic hypotension (spinal cord stimulators), urinary dysfunction (tibial and sacral nerve stimulators), sexual dysfunction (percutaneous perineal and sacral nerve stimulation), constipation (sacral anterior root stimulation), and gastroparesis (gastric electrical stimulation). However, most of these approaches are either experimental or not yet widely implemented. Recent medications are often more effective and/or better tolerated than older ones. These include droxidopa for orthostatic hypotension, β-3-adrenergic agonists for spastic bladder, and prucalopride, elobixibat and linaclotide for constipation. Autonomic disorders manifest with symptoms of homeostatic dysfunction. A wide variety of central and peripheral nervous system disorders cause dysautonomia. While the treatment of each specific disorder varies based on etiology, strategies overlap to manage dysautonomia. Treatments are divided into non-pharmacological, pharmacological, and neuromodulatory strategies. Here, we focus on the most common issues encountered in clinical practice and propose a stepwise approach to manage common symptoms that frequently integrates all three strategies.
Abstract Objective Patients with amyotrophic lateral sclerosis (ALS) caused by superoxide dismutase 1 (SOD1) gene mutations (SOD1 ALS) treated with tofersen have shown slowing of disease progression, and disease stabilization with recovery of function in some patients. We report our clinical experience with treating patients with SOD1 ALS and the effects of tofersen on outcome measures. Methods This was a single‐center observational study of patients with SOD1 ALS receiving treatment with tofersen. The effects of tofersen treatment on neurofilament levels, muscle strength, and clinical outcome measures were assessed. Several patients had outpatient neuromuscular rehabilitation in addition to tofersen treatment and we report changes in functional outcomes. Results Seven SOD1 ALS patients received treatment at our institution. All patients showed robust and sustained declines in serum NfL and CSF pNFH (mean change serum NfL: −57.9%; mean change CSF pNFH: −67.6%). There was apparent disease stabilization as assessed by the ALSFRS‐R total score, mean change 1.1 (SD = 0.7). There was notable improvement in functional independence measured by the FIM motor score, mean change 5.13 points (SD = 3.85). Interpretation This study provides evidence that tofersen treatment in SOD1 ALS can lead to meaningful preservation of function and suggestions of sustained improvement in neurologic function in some patients, and strongly supports the role of neurofilaments as therapeutic biomarkers.
Anti-melanoma differentiation-associated gene 5 (MDA-5) dermatomyositis (DM) is noteworthy for its association with rapidly progressive interstitial lung disease (RP-ILD), vasculopathy, and distinctive cutaneous features. First identified in a Japanese cohort in 2005, MDA-5 DM carries a significant mortality risk, emphasizing the crucial need for early diagnosis. This review explores the pathogenesis, clinical presentation, diagnosis, management, and prognosis of MDA-5 DM and ILD and includes new research and recommendations regarding disease management.
Amyotrophic lateral sclerosis (ALS) is a neurodegenerative condition affecting the motor system. The heterogenous nature of ALS complicates trial design. Genetic forms of ALS present an opportunity to intervene in a less heterogeneous population. ALS associated with gain of function mutations in SOD1 make 'knock-down' strategies an attractive therapeutic approach. Tofersen, an antisense oligonucleotide that reduces expression of SOD1 via RNAase mediated degradation of SOD1 mRNA, has shown robust effects on ALS biomarkers. While a Phase III trial of tofersen failed to meet its primary end point, open label extension data suggests that tofersen slows progression of SOD1 ALS.
Spiegelman, Dan V. BS; Stunkel, Leanne MD; Goyal, Manu S. MD; Varadhachary, Arun MD, PhD; Bucelli, Robert C. MD, PhD; Kim, Albert MD, PhD; Van Stavern, Gregory P. MD Author Information
BACKGROUND:Hexanucleotide repeat expansion of C9orf72 is a common genetic cause of amyotrophic lateral sclerosis (ALS). No C9orf72-targeted treatments are available. BIIB078 is an investigational antisense oligonucleotide targeting C9orf72 sense RNA. We aimed to assess the safety, tolerability, and pharmacokinetics of BIIB078 in participants with C9orf72-associated ALS. METHODS:This phase 1, randomised controlled trial was done at 22 sites in six countries (Canada, Ireland, Netherlands, Switzerland, UK, and USA). Adults with ALS and a pathogenic repeat expansion in C9orf72 were randomly assigned within six cohorts, via Interactive Response Technology in a 3:1 ratio per cohort, to receive BIIB078 (5 mg, 10 mg, 20 mg, 35 mg, 60 mg, or 90 mg in cohorts 1-6, respectively) or placebo, via an intrathecal bolus injection. The treatment period consisted of three loading doses of study treatment, administered approximately once every 2 weeks, followed by monthly maintenance doses during a treatment period of about 3 months for cohorts 1-3 and about 6 months for cohorts 4-6. Patients and investigators were masked to treatment assignment. The primary endpoint was the incidence of adverse events and serious adverse events. This trial was registered with ClinicalTrials.gov (NCT03626012) and is completed. FINDINGS:Between Sept 10, 2018, and Nov 17, 2021, 124 patients were screened for inclusion in the study. 18 patients were excluded and 106 participants were enrolled and randomly assigned to receive 5 mg (n=6), 10 mg (n=9), 20 mg (n=9), 35 mg (n=19), 60 mg (n=18), or 90 mg (n=18) of BIIB078, or placebo (n=27). 58 (55%) of 106 patients were female. All patients received at least one dose of study treatment and were included in all analyses. All participants had at least one adverse event; most adverse events were mild or moderate in severity and did not lead to treatment discontinuation. The most common adverse events in BIIB078-treated participants were falls, procedural pain, headache, and post lumbar puncture syndrome. 14 (18%) of 79 patients who received any dose of BIIB078 reported serious adverse events, compared with nine (33%) of 27 patients who received placebo. Five participants who received BIIB078 and three participants who received placebo had fatal adverse events: respiratory failure in a participant who received 10 mg BIIB078, ALS worsening in two participants who received 35 mg BIIB078, traumatic intracerebral haemorrhage in one participant who received 35 mg BIIB078, pulmonary embolism in one participant who received 60 mg BIIB078, and respiratory failure in three participants who received placebo. All deaths were assessed as not related to the study treatment by the reporting investigator. INTERPRETATION:On the basis of these phase 1 study results, including secondary and exploratory findings showing no reduction in neurofilament levels and no benefit on clinical outcomes relative to the placebo cohort, BIIB078 clinical development has been discontinued. However, these results will be informative in furthering our understanding of the complex pathobiology of C9orf72-associated ALS. FUNDING:Biogen.
INTRODUCTION/AIMS:Analysis of biofluids, especially cerebrospinal fluid (CSF), is critically important for amyotrophic lateral sclerosis (ALS) research. Collection of CSF is typically performed by lumbar puncture (LP). Previous studies have demonstrated the safety of LPs in patients with other neurodegenerative diseases, such as Alzheimer's disease, although there are no published studies of the safety of LPs in patients with ALS. We performed a retrospective analysis of complications resulting from LPs. METHODS:This is a retrospective study of LPs performed between 2015 and 2021 on a total of 233 participants (healthy controls [n = 63], ALS [n = 154], and disease controls [n = 16]) as part of clinical research studies at the Washington University ALS Center. We used bivariate logistical analyses looking for associations between participant characteristics and adverse events (AEs), and likelihood ratio tests were used for significance testing. RESULTS:We found an overall AE rate of 21.03%. AEs included headache, back pain, vasovagal syncope, and severe headache requiring epidural blood patch. Participants with ALS were not more likely to experience post-LP AEs compared to controls (odds ratio [OR] 0.61 [0.32-1.18]). Post-LP headaches were significantly less likely in participants with ALS (OR 0.36 [0.15-0.83]). DISCUSSION:Our findings demonstrate that LP is a safe procedure for participants with ALS, with a similar or lower rate of AEs than in participants without ALS.
BACKGROUND AND PURPOSE:Real-time quaking-induced conversion (RT-QuIC) assays offer a sensitive and specific means for detection of prions, although false negative results are recognized in clinical practice. We profile the clinical, laboratory, and pathologic features associated with false negative RT-QuIC assays and extend these to frame the diagnostic approach to patients with suspected prion disease. METHODS:A total of 113 patients with probable or definite prion disease were assessed at Mayo Clinic (Rochester, MN; Jacksonville, FL; Scottsdale, AZ) or Washington University School of Medicine (Saint Louis, MO) from 2013 to 2021. RT-QuIC testing for prions was performed in cerebrospinal fluid (CSF) at the National Prion Disease Pathology Surveillance Center (Cleveland, OH). RESULTS:Initial RT-QuIC testing was negative in 13 of 113 patients (sensitivity = 88.5%). RT-QuIC negative patients were younger (median = 52.0 years vs. 66.1 years, p < 0.001). Other demographic and presenting features, and CSF cell count, protein, and glucose levels were similar in RT-QuIC negative and positive patients. Frequency of 14-3-3 positivity (4/13 vs. 77/94, p < 0.001) and median CSF total tau levels were lower in RT-QuIC negative patients (2517 vs. 4001 pg/mL, p = 0.020), and time from symptom onset to first presentation (153 vs. 47 days, p = 0.001) and symptomatic duration (710 vs. 148 days, p = 0.001) were longer. CONCLUSIONS:RT-QuIC is a sensitive yet imperfect measure necessitating incorporation of other test results when evaluating patients with suspected prion disease. Patients with negative RT-QuIC had lower markers of neuronal damage (CSF total tau and protein 14-3-3) and longer symptomatic duration of disease, suggesting that false negative RT-QuIC testing associates with a more indolent course.
Identify the clinical, laboratory, and pathologic features associated with false negative real-time quaking-induced conversion (RT-QuIC) testing for prions.
Abstract Objective Accumulation of misfolded superoxide dismutase‐1 (SOD1) is a pathological hallmark of SOD1‐related amyotrophic lateral sclerosis (ALS) and is observed in sporadic ALS where its role in pathogenesis is controversial. Understanding in vivo protein kinetics may clarify how SOD1 influences neurodegeneration and inform optimal dosing for therapies that lower SOD1 transcripts. Methods We employed stable isotope labeling paired with mass spectrometry to evaluate in vivo protein kinetics and concentration of soluble SOD1 in cerebrospinal fluid (CSF) of SOD1 mutation carriers, sporadic ALS participants and controls. A deaminated SOD1 peptide, SDGPVKV, that correlates with protein stability was also measured. Results In participants with heterozygous SOD1A5V mutations, known to cause rapidly progressive ALS, mutant SOD1 protein exhibited ~twofold faster turnover and ~ 16‐fold lower concentration compared to wild‐type SOD1 protein. SDGPVKV levels were increased in SOD1A5V carriers relative to controls. Thus, SOD1 mutations impact protein kinetics and stability. We applied this approach to sporadic ALS participants and found that SOD1 turnover, concentration, and SDGPVKV levels are not significantly different compared to controls. Interpretation These results highlight the ability of stable isotope labeling approaches and peptide deamidation to discern the influence of disease mutations on protein kinetics and stability and support implementation of this method to optimize clinical trial design of gene and molecular therapies for neurological disorders. Trial Registration Clinicaltrials.gov: NCT03449212.