Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 3 de 3
Filter
Add more filters










Database
Language
Publication year range
1.
Physiol Rep ; 3(12)2015 Dec.
Article in English | MEDLINE | ID: mdl-26702073

ABSTRACT

The mechanisms responsible for the onset and progressive worsening of episodic muscle stiffness and weakness in hyperkalemic periodic paralysis (HyperKPP) are not fully understood. Using a knock-in HyperKPP mouse model harboring the M1592V NaV1.4 channel mutant, we interrogated changes in physiological defects during the first year, including tetrodotoxin-sensitive Na(+) influx, hindlimb electromyographic (EMG) activity and immobility, muscle weakness induced by elevated [K(+)]e, myofiber-type composition, and myofiber damage. In situ EMG activity was greater in HyperKPP than wild-type gastrocnemius, whereas spontaneous muscle contractions were observed in vitro. We suggest that both the greater EMG activity and spontaneous contractions are related to periods of hyperexcitability during which fibers generate action potentials by themselves in the absence of any stimulation and that these periods are the cause of the muscle stiffness reported by patients. HyperKPP muscles had a greater sensitivity to the K(+)-induced force depression than wild-type muscles. So, an increased interstitial K(+) concentration locally near subsets of myofibers as a result of the hyperexcitability likely produced partial loss of force rather than complete paralysis. NaV1.4 channel protein content reached adult level by 3 weeks postnatal in both wild type and HyperKPP and apparent symptoms did not worsen after the first month of age suggesting (i) that the phenotypic behavior of M1592V HyperKPP muscles results from defective function of mutant NaV1.4 channels rather than other changes in protein expression after the first month and (ii) that the lag in onset during the first decade and the progression of human HyperKPP symptoms during adolescence are a function of NaV1.4 channel content.

2.
Arthritis Rheumatol ; 67(8): 2164-75, 2015 May.
Article in English | MEDLINE | ID: mdl-25891852

ABSTRACT

OBJECTIVE: High-frequency, low-amplitude whole-body vibration (WBV) is being used to treat a range of musculoskeletal disorders; however, there is surprisingly limited knowledge regarding its effect(s) on joint tissues. This study was undertaken to examine the effects of repeated exposure to WBV on bone and joint tissues in an in vivo mouse model. METHODS: Ten-week-old male mice were exposed to vertical sinusoidal vibration under conditions that mimic those used clinically in humans (30 minutes per day, 5 days per week, at 45 Hz with peak acceleration at 0.3g). Following WBV, skeletal tissues were examined by micro-computed tomography, histologic analysis, and immunohistochemistry, and gene expression was quantified using real-time polymerase chain reaction. RESULTS: Following 4 weeks of WBV, intervertebral discs showed histologic hallmarks of degeneration in the annulus fibrosus, disruption of collagen organization, and increased cell death. Greater Mmp3 expression in the intervertebral disc, accompanied by enhanced collagen and aggrecan degradation, was found in mice exposed to WBV as compared to controls. Examination of the knee joints after 4 weeks of WBV revealed meniscal tears and focal damage to the articular cartilage, changes resembling osteoarthritis. Moreover, mice exposed to WBV also demonstrated greater Mmp13 gene expression and enhanced matrix metalloproteinase-mediated collagen and aggrecan degradation in articular cartilage as compared to controls. No changes in trabecular bone microarchitecture or density were detected in the proximal tibia. CONCLUSION: Our experiments reveal significant negative effects of WBV on joint tissues in a mouse model. These findings suggest the need for future studies of the effects of WBV on joint health in humans.


Subject(s)
Cartilage, Articular/injuries , Intervertebral Disc/injuries , Leg Injuries/etiology , RNA, Messenger/metabolism , Spinal Injuries/etiology , Tibia/injuries , Tibial Meniscus Injuries , Vibration/adverse effects , Aggrecans/metabolism , Animals , Bone Density , Cartilage, Articular/metabolism , Cartilage, Articular/pathology , Collagen/metabolism , Gene Expression Profiling , Intervertebral Disc/metabolism , Intervertebral Disc/pathology , Leg Injuries/diagnosis , Leg Injuries/metabolism , Male , Matrix Metalloproteinase 13/metabolism , Matrix Metalloproteinase 3/metabolism , Menisci, Tibial/metabolism , Menisci, Tibial/pathology , Mice , Radiography , Reverse Transcriptase Polymerase Chain Reaction , Spinal Injuries/diagnosis , Spinal Injuries/metabolism , Tibia/diagnostic imaging
3.
Physiol Genomics ; 46(11): 385-97, 2014 Jun 01.
Article in English | MEDLINE | ID: mdl-24714718

ABSTRACT

Hyperkalemic periodic paralysis (HyperKPP) is characterized by myotonic discharges that occur between episodic attacks of paralysis. Individuals with HyperKPP rarely suffer respiratory distress even though diaphragm muscle expresses the same defective Na(+) channel isoform (NaV1.4) that causes symptoms in limb muscles. We tested the hypothesis that the extent of the HyperKPP phenotype (low force generation and shift toward oxidative type I and IIA fibers) in muscle is a function of 1) the NaV1.4 channel content and 2) the Na(+) influx through the defective channels [i.e., the tetrodotoxin (TTX)-sensitive Na(+) influx]. We measured NaV1.4 channel protein content, TTX-sensitive Na(+) influx, force generation, and myosin isoform expression in four muscles from knock-in mice expressing a NaV1.4 isoform corresponding to the human M1592V mutant. The HyperKPP flexor digitorum brevis muscle showed no contractile abnormalities, which correlated well with its low NaV1.4 protein content and by far the lowest TTX-sensitive Na(+) influx. In contrast, diaphragm muscle expressing the HyperKPP mutant contained high levels of NaV1.4 protein and exhibited a TTX-sensitive Na(+) influx that was 22% higher compared with affected extensor digitorum longus (EDL) and soleus muscles. Surprisingly, despite this high burden of Na(+) influx, the contractility phenotype was very mild in mutant diaphragm compared with the robust abnormalities observed in EDL and soleus. This study provides evidence that HyperKPP phenotype does not depend solely on the NaV1.4 content or Na(+) influx and that the diaphragm does not depend solely on Na(+)-K(+) pumps to ameliorate the phenotype.


Subject(s)
Muscle Contraction/genetics , Muscle Fibers, Skeletal/metabolism , Muscle, Skeletal/metabolism , Mutation/genetics , NAV1.4 Voltage-Gated Sodium Channel/genetics , Paralysis, Hyperkalemic Periodic/genetics , Sodium/metabolism , Animals , Humans , Mice , Myosins/genetics , Myosins/metabolism , NAV1.4 Voltage-Gated Sodium Channel/metabolism , Paralysis, Hyperkalemic Periodic/metabolism , Potassium/metabolism
SELECTION OF CITATIONS
SEARCH DETAIL