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1.
Surgery ; 175(1): 187-192, 2024 01.
Article En | MEDLINE | ID: mdl-37925259

BACKGROUND: Long-term lithium therapy has a well-established but under-recognized association with primary hyperparathyroidism. Rates of hypercalcemia, screening for primary hyperparathyroidism, and referral for parathyroidectomy were evaluated among United States veterans on long-term lithium therapy. METHODS: Patients undergoing chronic long-term lithium therapy (>12 months) were identified from 1999 to 2022. Demographics, long-term lithium therapy duration, post-treatment calcium, parathyroid hormone, creatinine, and vitamin D levels were abstracted. Rates of screening for hypercalcemia (calcium ≥10.2 mg/dL), primary hyperparathyroidism (parathyroid hormone ≥30 pg/mL in the setting of hypercalcemia), referral for parathyroidectomy, and outcomes were evaluated. RESULTS: A total of 1,356 patients underwent long-term lithium therapy, 514 of whom received chronic long-term lithium therapy. Baseline characteristics of patients with and without post-treatment hypercalcemia were compared. Of 148 patients with post-treatment hypercalcemia, 112 (74.7%) underwent no further evaluation for primary hyperparathyroidism, while 36 (25.3%) patients had a parathyroid hormone level recorded. Although 33 (91.7%) hypercalcemic patients screened positive for primary hyperparathyroidism, only 5 (13%) were referred for parathyroidectomy. Of the 4 patients who underwent parathyroidectomy, mean calcium was 11.2 mg/dL (range 11.1-11.4), and mean parathyroid hormone was 272 pg/mL (range 108-622). Three patients were localized on preoperative imaging, 2 of whom underwent unilateral exploration with cure, with 1 experiencing recurrence at 31 months. The remaining patient who localized preoperatively underwent bilateral exploration and had 2 ipsilateral glands resected and persistence. The patient who did not localize preoperatively underwent bilateral exploration with 3 gland resection and cure. CONCLUSIONS: Screening for primary hyperparathyroidism and referral for parathyroidectomy are underutilized in United States veterans undergoing chronic long-term lithium therapy. Institutional protocols to standardize screening, surveillance, and referrals to endocrinology/endocrine surgery could benefit this population at increased risk for primary hyperparathyroidism.


Hypercalcemia , Hyperparathyroidism, Primary , Veterans , Humans , Lithium/adverse effects , Calcium , Hyperparathyroidism, Primary/diagnosis , Hyperparathyroidism, Primary/surgery , Hyperparathyroidism, Primary/complications , Hypercalcemia/chemically induced , Hypercalcemia/diagnosis , Hypercalcemia/epidemiology , Parathyroid Hormone , Parathyroidectomy/adverse effects , Parathyroidectomy/methods , Lithium Compounds
2.
PLoS One ; 12(8): e0181308, 2017.
Article En | MEDLINE | ID: mdl-28771594

Statins, the 3-hydroxy-3-methyl-glutaryl (HMG)-CoA reductase inhibitors, are widely prescribed for treatment of hypercholesterolemia. Although statins are generally well tolerated, up to ten percent of statin-treated patients experience myalgia symptoms, defined as muscle pain without elevated creatinine phosphokinase (CPK) levels. Myalgia is the most frequent reason for discontinuation of statin therapy. The mechanisms underlying statin myalgia are not clearly understood. To elucidate changes in gene expression associated with statin myalgia, we compared profiles of gene expression in skeletal muscle biopsies from patients with statin myalgia who were undergoing statin re-challenge (cases) versus those of statin-tolerant controls. A robust separation of case and control cohorts was revealed by Principal Component Analysis of differentially expressed genes (DEGs). To identify putative gene expression and metabolic pathways that may be perturbed in skeletal muscles of patients with statin myalgia, we subjected DEGs to Ingenuity Pathways (IPA) and DAVID (Database for Annotation, Visualization and Integrated Discovery) analyses. The most prominent pathways altered by statins included cellular stress, apoptosis, cell senescence and DNA repair (TP53, BARD1, Mre11 and RAD51); activation of pro-inflammatory immune response (CXCL12, CST5, POU2F1); protein catabolism, cholesterol biosynthesis, protein prenylation and RAS-GTPase activation (FDFT1, LSS, TP53, UBD, ATF2, H-ras). Based on these data we tentatively conclude that persistent myalgia in response to statins may emanate from cellular stress underpinned by mechanisms of post-inflammatory repair and regeneration. We also posit that this subset of individuals is genetically predisposed to eliciting altered statin metabolism and/or increased end-organ susceptibility that lead to a range of statin-induced myopathies. This mechanistic scenario is further bolstered by the discovery that a number of single nucleotide polymorphisms (e.g., SLCO1B1, SLCO2B1 and RYR2) associated with statin myalgia and myositis were observed with increased frequency among patients with statin myalgia.


Gene Expression Regulation/drug effects , Hydroxymethylglutaryl-CoA Reductase Inhibitors/adverse effects , Muscle, Skeletal/drug effects , Muscle, Skeletal/metabolism , Myalgia/chemically induced , Myalgia/genetics , Aged , Female , Gene Regulatory Networks/drug effects , Humans , Leukocytes, Mononuclear/drug effects , Leukocytes, Mononuclear/metabolism , Male , Middle Aged , Myalgia/physiopathology , Polymorphism, Single Nucleotide
3.
J Clin Lipidol ; 5(4): 299-307, 2011.
Article En | MEDLINE | ID: mdl-21784376

BACKGROUND: Muscle pain without elevation of serum creatine phosphokinase (CPK) (myalgia) is the most common medication-related adverse effect of statin therapy; it occurs in up to 10% of patients who are prescribed statin therapy. Although much is known regarding risk factors for overt myositis, very few studies have provided information on this common form of statin intolerance. METHODS: We defined a detailed clinical and laboratory phenotype of a cohort of patients referred to the lipid clinic of a governmental health maintenance organization for statin intolerance attributable to muscle pain without CPK elevation (myalgia) and characterized their response to alternative lipid-lowering therapy. Baseline and follow-up data were analyzed for 104 patients with statin intolerance attributable to myalgia and 211 statin-tolerant control patients identified from the referral population. RESULTS: Among patients with myalgia, more were white and had hypertension. The prevalence of known risk factors for overt myositis, including renal disease, type 2 diabetes mellitus, thyroid disease, and electrolyte abnormalities, did not differ between statin intolerant and statin tolerant patients. Although individual cases were identified in which the addition of interacting medications was temporally associated with development of statin intolerance, overall use of interacting medications was not more frequent among statin-intolerant patients. The majority of patients were intolerant of two or more statins; however, in more than one-half the cases, successful rechallenge with an alternative statin was accomplished. Despite this and extensive use of nonstatin lipid medications after lipid clinic referral, control of plasma lipoproteins remained significantly worse in statin-intolerant patients. CONCLUSIONS: Statin intolerance attributable to myalgia is a significant barrier to effective treatment of hyperlipidemia. Conventional clinical risk factors for myositis do not appear to predictive of statin-associated myalgia. These findings underscore the need to better define the pathophysiology of statin-induced myalgia and develop methodologies to guide treatment of statin-intolerant patients.


Creatine Kinase/blood , Hydroxymethylglutaryl-CoA Reductase Inhibitors/adverse effects , Muscular Diseases/chemically induced , Pain/chemically induced , Phenotype , Aged , Case-Control Studies , Female , Follow-Up Studies , Humans , Hyperlipidemias/blood , Hyperlipidemias/drug therapy , Hyperlipidemias/physiopathology , Male , Middle Aged , Myositis/chemically induced
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