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Management of dysphagia in inclusion body myositis.

Inclusion body myositis is an inflammatory myopathy in which dysphagia has been considered a rare finding. However, recent literature finds dysphagia an increasingly common symptom as more cases of inclusion body myositis are identified. Unlike some inflammatory myopathic disorders, inclusion body myositis is resistant to treatment with corticosteroids, and therefore, the otolaryngologist may be consulted regarding surgical options for relief of dysphagia. A patient is described in whom severe progressive dysphagia associated with inclusion body myositis developed. Impaired pharyngeal wall motion and cricopharyngeal achalasia were demonstrated by videofluoroscopic evaluation, and the patient was successfully treated by cricopharyngeal myotomy. The pathophysiologic nature of inclusion body myositis and the mechanisms of cervical dysphagia in the inflammatory myopathies are reviewed.

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[Inclusion body myositis].

Inclusion body myositis has been recently recognized as a clinical entity although its exact definition remains uncertain. Initially considered to be an inflammatory dermatomyositis, inclusion body myositis can actually take on three specific forms: disseminated muscle atrophy and weakness, pseudopolymyositis, or pseudo-degenerative disease. Inclusion body myositis is different from non-inflammatory neuromuscular diseases with vacuoles. Abnormal deposits are seen within the muscle fiber may contain amyloid substance, beta-amyloid precursor, ubiquitin, antichymotrypsin, protein tau, apolipoprotein E and even prions. The signification of these deposits is unknown. Deletions in mitochondrial DNA have been demonstrated but do not appear to play a causal role. More and more hereditary forms are being recognized and certain may be related to an abnormality in chromosome 9.

Amyloid beta-Peptides↗

Clinical heterogeneity and treatment response in inclusion body myositis.

Inclusion body myositis has been described as an inflammatory myopathy with distinctive clinical and pathologic features that is refractory to treatment. Ten cases of inclusion body myositis, as defined by histopathologic findings, were reviewed to determine whether the clinical characteristics are different in patients whose disease has been defined by light and electron microscopic studies compared with those whose disease has been defined by light microscopic studies alone. The clinical characteristics of both groups of patients were similar, and 2 patients have had excellent responses to treatment. Although inclusion body myositis represents a histologic subset of polymyositis, from a clinical perspective, it must be considered a nonspecific designation. Despite a generally poor prognosis, therapeutic intervention is still warranted.

Adult↗

Isokinetic strength testing for evaluating the efficacy of intravenous immune globulin therapy for inclusion body myositis.

Inclusion body myositis is a disease of striated skeletal muscle of unclear etiopathogenesis. Its diagnosis is difficult. Corticosteroids and immunosuppressants are of limited efficacy. Positive responses to intravenous immune globulins have recently been reported in a few patients. We used a CYBEX 6000 isokinetic dynamometer to evaluate the efficacy of intravenous immune globulin therapy in a patient with inclusion body myositis. Measurements were done at the flexors and extensors of the knee, at baseline and four and eight months after treatment initiation. A course of intravenous immune globulins (2 g per course) was given every month for five months then every two months. Isokinetic muscle strength measured at an angular speed of 180 degrees/second increased by more than 41% at both knees. As compared with muscle imaging studies (computed tomography, X-ray absorptiometry, ultrasonography, magnetic resonance imaging), isokinetic strength testing has the advantage of providing data on functional improvements under treatment.

Humans↗

Inclusion body myositis.

Inclusion body myositis (IBM) is an inflammatory myopathy with distinctive clinicopathologic features. The etiology of IBM remains elusive. The immune-mediated basis for this disease has been challenged by evidence implicating a number of divergent etiologic factors. These factors include mitochondrial deletions, nitric oxide induced oxidative stress, myonuclear breakdown, and abnormal accumulation within muscle fibers of brain-specific Alzheimer type proteins. The treatment of IBM with conventional immunosuppressive agents has been disappointing. Therapeutic approaches currently under study or consideration are beta-interferon and synthetic anabolic hormones.

Female↗

Injection of botulinum toxin A to the upper esophageal sphincter for oropharyngeal dysphagia in two patients with inclusion body myositis.

Inclusion body myositis (IBM) is a progressive degenerative skeletal muscle disease leading to weakening and atrophy of both proximal and distal muscles. Dysphagia is reported in up to 86% of IBM patients. Surgical cricopharyngeal myotomy may be effective for cricopharyngeal dysphagia and there is one published report that botulinum toxin A, injected into the cricopharyngeus muscle using a hypopharyngoscope under general anesthesia, relieved IBM-associated dysphagia. This report presents the first documentation of botulinum toxin A injection into the upper esophageal sphincter using a flexible esophagogastroduodenoscope under conscious sedation, to reduce upper esophageal sphincter pressure and successfully alleviate oropharyngeal dysphagia in two IBM patients.

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Oligoclonal expansion of muscle infiltrating T cells in inclusion body myositis.

Inclusion body myositis (IBM) is the most common muscle disease affecting individuals over 50 years of age. An important feature of IBM is invasion of muscle fibers by T cells. The muscle infiltrating T cells show a restricted usage of variable (V) alpha/beta gene families. In this study we have investigated the clonality of T cells using two of the predominant V beta families i.e. V beta 3 and V beta 8 in three patients with IBM. The study was performed by reverse transcription and polymerase chain reaction (RT-PCR) analysis, followed by cloning and sequencing of the T cell receptor complementarity determining region 3. We found oligoclonal expansion of V beta 3 bearing muscle infiltrating T cells in two patients and of V beta 8 in one patient, supporting the concept that antigen stimulated T cells are important in the pathogenesis of IBM. Results of HLA typing indicated a genetic predisposition for the disease by the presence of DR3, DR52 and DQB1*0201/0202 in all three patients.

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Limited T-cell receptor V gene usage in inclusion body myositis.

Inclusion body myositis (IBM) is a chronic, progressive inflammatory myopathy. The inflammatory infiltrates are dominated by T cells, which frequently invade muscle fibres. The present study was performed to characterize the usage of the variable (V) segment of the T-cell receptor of muscle infiltrating cells in IBM. Using the reverse transcriptase polymerase chain reaction (RT-PCR) technique the authors analysed the expression of 22 V alpha and 24 V beta families in muscle tissue from six patients with IBM displaying intense inflammatory cell infiltration. The following V alpha/V beta families appeared in at least 50% of the patients: V alpha 1, 5, 7, 15, 16, 17, 20, 21, 22 and V beta 3, 5.2, 8, 12, 14, 22. In all patients V alpha 7, 16 and V beta 8 were expressed in muscle tissue. Furthermore, in two of the patients peripheral blood lymphocytes (PBL) were investigated in parallel. There was a restricted usage of V alpha and V beta families in muscle in comparison to PBL, indicating a selective homing or local proliferation of T lymphocytes in the inflammatory lesions in IBM.

Adult↗

Analysis of multiple mitochondrial DNA deletions in inclusion body myositis.

Inclusion body myositis (IBM) is a sporadic progressive myopathy, which is morphologically characterized by inflammatory cell infiltrates and rimmed vacuoles in muscle fibers. Mitochondrial changes are regularly present with ragged-red fibers showing deficiency of cytochrome c oxidase. In these muscle fiber segments, there is accumulation of mitochondria with mitochondrial DNA (mtDNA) deletions. There are different deletions in different muscle fibers. In this study, we have sequenced for the first time the multiple mtDNA deletions in muscle from four patients with IBM. The deletion breakpoints were sequenced from cloned polymerase chain reaction (PCR)-amplified mtDNA fragments. The sequencing was performed directly from the bacterial colonies used for cloning. Of 122 analyzed clones, 33 different deletions were identified. The majority of these have not previously been described. There was a marked predominance of deletion breakpoints in certain regions of mtDNA. These predominant breakpoint regions are similar to those described in other conditions with multiple deletions, such as autosomal dominant progressive external ophthalmoplegia (adPEO) and normal aging, but different from those described in diseases due to single deletions such as Kearns-Sayre syndrome and sporadic PEO. These findings indicate that common factors are involved in the development of multiple mtDNA deletions in IBM, adPEO, and aging.

Adult↗

Characterization of the mitochondrial DNA abnormalities in the skeletal muscle of patients with inclusion body myositis.

Inclusion body myositis (IBM) is a late-onset inflammatory myopathy with distinctive clinical and histopathological features. The molecular basis for the disease remains unknown, but abnormal nuclear morphology and the accumulation of a protein that binds single-stranded DNA in a sequence-independent fashion suggest a nuclear defect. Evidence of mitochondrial respiratory chain dysfunction (ragged-red fibers, multiple mtDNA deletions) has been reported in IBM muscle. Here we have investigated the relationship of the mtDNA abnormalities in sporadic and familial IBM patients to the pathogenesis of the disease. In situ hybridization analysis with mtDNA probes revealed several different mtDNA abnormalities in cytochrome c oxidase-negative muscle fibers including large-scale mtDNA deletions and mtDNA depletion, but no evidence for nonspecific DNA binding. Contrary to previous reports, we did not observe mtDNA deletions on Southern blot analysis, consistent with the presence of multiple different deleted mtDNA species demonstrated by single fiber PCR. There was no consistent correlation between the mitochondrial abnormalities and markers of muscle regeneration, inflammation, or microscopically detectable pathological alterations of myonuclei in the same fibers. Thus, early molecular abnormalities in IBM may simply accelerate the accumulation of mtDNA abnormalities that occurs with natural aging.

Adult↗

Proteasomal expression, induction of immunoproteasome subunits, and local MHC class I presentation in myofibrillar myopathy and inclusion body myositis.

Inclusion body myositis (IBM) and myofibrillar myopathy (MM) are diseases characterized by the abnormal accumulation of proteins in muscle fibers, including desmin, alphaB-crystallin, gelsolin, actin, kinases, and phospho-tau, along with ubiquitin in muscle fibers, suggesting abnormal protein degradation as a possible cause of the surplus myopathy. Since the ubiquitin-proteasome system plays a crucial role in non-lysosomal protein degradation, the present study has examined by immunohistochemistry the expression of components of the catalytic core of 20S proteasomes and its regulators: 19S and PA28alpha/beta, and the expression of immunoproteasome subunits LMP2, LMP7, and MECL1 in 8 patients with MM and 10 patients with IBM. The patients with MM were from 6 unrelated families, 2 sporadic cases, I with autosomal recessive and 5 with autosomal dominant inheritance. One sporadic patient had a de novo R406W mutation in the desmin gene, and 1 patient with autosomal dominant MM had a single amino acid deletion at position 366 in the desmin gene. Increased immunoreactivity to 20S, 19S, and PA28alpha/beta colocalizing abnormal protein deposits, as revealed in consecutive serial sections, was seen in all cases with MM and IBM. In all cases, the subunits of the immunoproteasome LMP2, LMP7, and MECL1 colocalized with proteasomal immunoreactivity and abnormal protein accumulation. Immunohistochemistry revealed focal MHC class I immunoreactivity in the cytoplasmic membrane of muscle fibers in IBM and in association with protein aggregates in IBM, and to a lesser degree, in MM. The present findings provide a link between abnormal protein accumulation and altered proteasomal expression in IBM and MM.

Adenosine Triphosphatases↗

Transgenic mice over-expressing the C-99 fragment of betaPP with an alpha-secretase site mutation develop a myopathy similar to human inclusion body myositis.

Inclusion body myositis (IBM) is the most common muscle disease in the elderly. Amyloid-beta protein (A beta) has been shown to accumulate abnormally in the vacuolated fibers and to localize to amyloid-like fibrils in muscles from IBM patients. We studied the skeletal muscles from a line of transgenic mice over-expressing the carboxyl-terminal 99 amino acids (C99) of the beta-amyloid precursor protein (betaPP) with a substitution of lysine-612 to valine (K612V), intended to abolish alpha-secretase recognition and to preserve the A beta domain of C99. The majority (87%) of the 24-month-old transgenic mice showed myopathic changes, and approximately one-third of them had degenerating fibers with sarcoplasmic vacuoles and thioflavin-S-positive deposits. Ultrastructurally, the inclusions were aggregates of short thin amyloid-like fibrils, 6 to 8 nm in diameter. These features are similar to those of human IBM. Immunocytochemistry using an antibody against A beta showed membranous staining in most muscle fibers of transgenic mice, as well as granular or vacuolar cytoplasmic staining in the atrophic fibers. Western blots showed a high level of accumulation of carboxyl-terminal fragments of betaPP in the muscles of the transgenic mice with the most severe IBM-like lesions. The expression of IBM-like lesions was age dependent. These transgenic mice provide a model for the study of IBM and for the peripheral expression of a key element in the pathogenesis of Alzheimer disease.

Age Factors↗

Shared blood and muscle CD8+ T-cell expansions in inclusion body myositis.

Inclusion body myositis (IBM) is the most frequent inflammatory myopathy over the age of fifty. Pathological findings suggest that two processes may contribute to IBM pathogenesis: a primary degenerative process affecting muscle fibre and/or an autoimmune process mediated by major histocompatibility complex (MHC) class-I-restricted cytotoxic CD8+ T cells. Previous studies have demonstrated that muscle-infiltrating CD8+ T cells in IBM display restricted expression of T-cell receptor (TCR)-BV families or evidenced oligoclonal T-cell expansions. This study was performed to investigate whether blood T cells similarly exhibit clonal expansions due to the recirculation of muscle-infiltrating T cells in the periphery. For this, we studied the T-cell repertoire of 17 IBM patients by complementarity-determining-region (CDR) 3 length distribution (immunoscope) analysis of TCR-B transcripts. Mean age was 68 years (range 53-88) and mean duration of the disease was 6.5 years (2-20). Oligoclonal T-cell expansions were observed in the blood of IBM patients. The quantitative average perturbation D index was significantly increased in IBM patients [D = 13.7% +/- 1.2%, mean +/- standard error of measurement (SEM)] as compared with 17 age-matched controls suffering from connective tissue diseases not associated with T-cell repertoire perturbation, that is, dermatomyositis (DM) and systemic sclerosis (9.3 +/- 0.6%, P < 0.005). Nevertheless, there was no correlation between the level of blood perturbation and muscle inflammation. Sorting experiments showed that these perturbations were due to oligoclonal expansions of CD8+ T cells. In the three IBM patients analysed, we could relate the blood expansions to T-cell clones also found in muscle. The clonally expanded blood T cells dramatically responded to interleukin-2 (IL-2) in vitro, suggesting that they had been primed in vivo, presumably in response to yet unknown muscle auto-antigens. Together, our results indicate that clonally expanded muscle-infiltrating CD8+ T cells re-circulate in the blood and support the concept of a CD8+ T-cell-mediated autoimmune component in IBM, similarly to what is observed in polymyositis (PM).

Aged↗

T cell receptor beta-chain repertoire in inclusion body myositis.

Inclusion body myositis (IBM) is the most common muscle disease affecting individuals over 50 years of age. The inflammatory reaction is characterized by cell infiltrates predominated by CD8+ cytotoxic T cells. To analyze clonality of muscle infiltrating lymphocytes, we studied the complementarity determining region 3 (CDR3) length distribution of the T cell receptor (TCR). Muscle infiltrating lymphocytes were studied in three IBM patients and compared with peripheral blood lymphocytes (PBL) in two of these patients. The study was performed by reverse transcription polymerase chain reaction (RT-PCR) of RNA extracted from muscle tissue and PBL followed by analysis of fragment length distribution of the CDR3 region in each of 24 different Vbeta families. There was a restricted usage of TCR Vbeta gene families in muscle infiltrating T cells in all three patients. Some of the TCR Vbeta gene families showed oligoclonal expansions but polyclonal patterns were dominating. The CDR3 distribution of most Vbeta families differed between muscle infiltrating lymphocytes and PBL indicating that T cells have expanded locally or selectively accumulated in muscle.

Aged↗

HLA associations with inclusion body myositis.

Inclusion body myositis (IBM) is defined clinically by a characteristic pattern of progressive proximal and distal limb muscle weakness and resistance to steroid therapy, and histologically by the presence of distinctive rimmed vacuoles and filamentous inclusions as well as a mononuclear infiltrate in which CD8+ T cells are predominant. Muscle damage is believed to be mediated by autoimmune mechanisms, but very little information is available on the immunogenic features of IBM. MHC class I and DR antigens were typed on 13 caucasoid patients with IBM using standard serological techniques or by allele-specific oligonucleotide typing. Complement components C4 and properdin factor B (Bf) were typed by immunofixation after electrophoresis. Restriction fragment length polymorphisms (RFLP) in the class III region were analysed using cDNA probes for C4 and 21-hydroxylase (CYP21) after Taq 1 digestion. IBM was associated with DR3 (92%), DR52 (100%) and HLA B8 (75%). The phenotype data were examined for likely haplotypes by considering together the alleles at the class I, DR and complement loci along with the C4 and CYP21 RFLP. Ten of the DR3+ subjects had a 6.4-kb C4-hybridizing fragment characteristic of a deletion of C4A and CYP21-A. These patients probably carried all, or at least the class II and III regions, of the extended haplotype marked by B8/C4A*Q0/C4B1/BfS/DR3/DR52, which has been associated with several autoimmune diseases and is present in 11% of the healthy caucasoid population. Of the remaining subjects, two had evidence of the extended haplotype marked by B18/C4A3/C4BW*0/BfF1/DR3, which is present in less than 5% of the healthy population and has been associated with insulin-dependent diabetes mellitus. These data provide support for an autoimmune etiology for, and genetic predisposition to, IBM.

Adult↗

Mitochondrial DNA deletions in muscle fibers in inclusion body myositis.

Inclusion body myositis (IBM) is an autoimmune, inflammatory myopathy where morphological changes of muscle, including ragged red fibers, have indicated mitochondrial dysfunction in some muscle fibers. In this study enzyme histochemical analysis showed that cytochrome c oxidase (COX)-deficient muscle fibers were present at a frequency ranging from 0.5 to 5% of the muscle fibers in a series of 20 IBM patients. In age-matched controls, only occasional COX-deficient muscle fibers were present. Polymerase chain reaction (PCR) analysis of DNA extracted from muscle tissue of the IBM patients showed multiple mtDNA deletions. PCR analysis of isolated, single muscle fibers showed presence of mtDNA with only one type of deletion and deficiency of wild-type mtDNA in each COX-deficient muscle fiber. This finding was supported by results from in situ hybridization using different mtDNA probes on consecutive sections. A 5 kb deletion was identified in all 20 IBM patients. DNA sequencing of the breakpoint region showed that this deletion was the so-called "common deletion." Most but not all of the investigated deletion breakpoints were flanked by direct repeats. COX-deficient fibers were more frequent among fibers with positive immunostaining with antibodies directed toward a regeneration marker, the Leu-19 antigen, than in the entire fiber population. These results show that COX deficiency in muscle fiber segments in IBM is associated with deletions of mtDNA. Clonal expansion of mtDNA with deletions may take place in regenerating muscle fibers following segmental necrosis.

Adult↗

Inclusion Body Myositis.

Inclusion body myositis (IBM) is usually refractory to immunosuppressive therapy; however, a few reports suggest that a minority of patients with IBM may have a partial, transient response or that therapy may slow progression. Therefore, although we generally discourage the use of immunosuppressive therapy for IBM, if the patient is willing to accept the potential side effects of therapy, a 3- to 6-month trial of oral prednisone can be attempted: 100 mg/d for 2 to 4 weeks, then 100 mg every other day for 2 to 3 months. If prednisone alone produces no improvement after 3 months, oral methotrexate can be added: 10 to 15 mg/wk for 6 to 12 months. If there is no objective clinical improvement in strength after a trial of prednisone alone or prednisone plus methotrexate over the course of 6 to 12 months, we discontinue pharmacologic therapy. Because of the great expense, relative lack of availability, and minimal evidence of benefit of intravenous immunoglobulin (IVIG), we do not recommend this form of immunomodulating therapy for IBM.

Journal Article↗

HLA allele distribution distinguishes sporadic inclusion body myositis from hereditary inclusion body myopathies.

We studied the HLA class II associations in patients with sporadic inclusion body myositis (s-IBM) and hereditary inclusion body myopathies (h-IBM) and attempted to distinguish these myopathies on the basis of HLA allele assignments. Forty-five patients, 30 with s-IBM and 15 with h-IBM, underwent HLA class II allele-specific typing using polymerase chain reaction sequence-specific primers for 71 alleles contained in the DRbeta1, DRbeta3-5, and DQbeta1 loci. In s-IBM, we found a high (up to 77%) frequency of DRbeta1*0301, DRbeta3*0101 (or DRbeta3*0202) and DQbeta1*0201 alleles. No significant association with alleles in the DR and DQ haplotypes was found among the 15 h-IBM patients. The strong association of prominent alleles with s-IBM, but not h-IBM, suggests that s-IBM is a distinct disorder with an immunogenetic background that differs from h-IBM.

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