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Neonatal severe hyperparathyroidism, secondary hyperparathyroidism, and familial hypocalciuric hypercalcemia: multiple different phenotypes associated with an inactivating Alu insertion mutation of the calcium-sensing receptor gene.

Neonatal severe hyperparathyroidism (NSHPT) is considered an autosomal-recessive disorder, attributable in many cases to homozygous inactivating mutations of the Ca++-sensing receptor (CASR) gene at 3q13.3-21. Most heterozygotes are clinically asymptomatic but manifest as familial (benign) hypocalciuric hypercalcemia (FHH) with a laboratory profile that is variably and sometimes only marginally different from normal. In 5 NSHPT cases from 3 Nova Scotian families, we found homoallelic homozygosity for an insertion mutation in exon 7 of CASR that includes an Alu repeat element with an exceptionally long polyA tract. Four of the 5 NSHPT infants were treated by parathyroidectomy more than a decade ago and are well now. A fifth went undiagnosed until adulthood and has profound musculoskeletal and neurobehavioral deficits. Among 36 identified FHH heterozygotes are 3 individuals with an unexpected degree of hypercalcemia and elevated circulating parathyroid hormone levels consistent with secondary hyperparathyroidism. Two are obligately heterozygous offspring of NSHPT mothers with surgical hypoparathyroidism and variable compliance with vitamin D therapy. The other is an adult with coexistent celiac disease in whom hyperparathyroidism, probably secondary to vitamin D deficiency, led to surgery. In counseling affected families, the heterozygous state should not be considered entirely benign, since FHH heterozygotes, particularly infants, may be prone to secondary hyperparathyroidism and symptomatic hypercalcemia. In such families, molecular diagnosis will allow for unambiguous identification of at-risk individuals.

Adult↗

Molecular mechanisms of secondary hyperparathyroidism.

Secondary hyperparathyroidism is a frequent complication of chronic renal failure (CRF) and a major factor in the pathogenesis of renal osteodystrophy. A high serum phosphate, decreased levels of serum 1,25(OH)2D3 and the subsequently low serum calcium are the major metabolic abnormalities in CRF, which lead to the secondary hyperparathyroidism. At the level of parathyroid hormone (PTH) secretion there is insensitivity to the ambient serum calcium. PTH mRNA levels are increased by a post-transcriptional mechanism that involves the binding of PT cytosolic proteins to the PTH mRNA 3'-untranslated region (UTR). In a dietary model of secondary hyperparathyroidism due to hypocalcemia there is increased binding of parathyroid proteins to the 3'-UTR and decreased degradation as determined by an in vitro degradation assay. Changes in serum phosphate also dramatically regulate PTH mRNA stability. There is also regulation at the level of PT cell proliferation. PT cell proliferation is increased by experimental hypocalcemia or hyperphosphatemia and decreased by hypophosphatemia and administered 1,25(OH)2D3. The understanding of the molecular mechanisms involved in the genesis of secondary hyperparathyroidism will allow the design of new effective strategies in the management of this troubling condition.

3' Untranslated Regions↗

Implications of intermittent calcitriol therapy on growth and secondary hyperparathyroidism.

Secondary hyperparathyroidism is the most common skeletal lesion in pediatric patients undergoing maintenance dialysis. The present review summarizes a prospective randomized study that evaluated the biochemical and skeletal responses to intermittent calcitriol therapy in 33 pediatric patients on peritoneal dialysis with secondary hyperparathyroidism. Also, the effect of intermittent calcitriol therapy on linear growth was evaluated in 16 of 33 patients who had completed the clinical trial. Serum parathyroid hormone levels decreased by 62% from 648+/-125 pg/ml in patients treated with intermittent intraperitoneal (IP) calcitriol, and values remained unchanged from pre-treatment levels of 670+/-97 pg/ml with oral calcitriol therapy. Overall serum total and ionized calcium levels were higher in patients treated with IP calcitriol during the study. In contrast to these biochemical findings, the skeletal lesions of secondary hyperparathyroidism improved after 12 months of treatment in both groups and adynamic bone occurred in 33% of the patients. Z-scores for height decreased from -1.80 /-0.3 to -2.00+/-0.3, P<0.01, after 12 months of intermittent calcitriol therapy. Such findings suggest that an intermittent schedule of calcitriol administration adversely affects chondrocyte activity within epiphyseal cartilage in pre-pubertal children with end-stage renal disease.

Animals↗

Pathogenesis of secondary hyperparathyroidism.

Secondary hyperparathyroidism is a universal complication in patients with chronic renal failure. Hyperplasia of the parathyroid glands is typically seen in these patients. In early renal failure, alteration in vitamin metabolism, decreased levels of calcitriol and moderate decreases in ionized calcium may allow greater synthesis and secretion of PTH. As the disease progresses, there is a decrease in the number of vitamin D receptors (VDR) and calcium receptors (CaR). The decreased number of VDR and CaR makes the parathyroid glands more resistant to calcitriol and calcium. Phosphorus induces hyperplasia of the parathyroid glands independent of calcium and calcitriol, and by a post-transcriptional mechanism increases PTH synthesis and secretion. Experimental work in uremic rats demonstrated that if the animals are fed a high-phosphorus diet, they not only developed secondary hyperparathyroidism but parathyroid cell hyperplasia. If the diet is then reduced in phosphorus, the levels of PTH return to normal. However, the parathyroid cell hyperplasia persists and no apoptosis is seen. Thus, the control of the three most important factors, calcium, calcitriol and phosphorus, is critical to prevent the development of secondary hyperparathyroidism and hyperplasia of the parathyroid glands.

Animals↗

Infarction of mediastinal parathyroid gland causing spontaneous remission of secondary hyperparathyroidism.

Secondary hyperparathyroidism is a serious complication in long-term hemodialysis patients. The authors report on 2 patients on long-term hemodialysis who suffered from persistent secondary hyperparathyroidism due to missed mediastinal parathyroid gland after total parathyroidectomy with forearm autograft. Reoperation was planned. In both cases, severe hypocalcemia suddenly developed; serum parathyroid hormone (PTH) level decreased markedly after this episode. The serum calcium level increased gradually in response to administration of vitamin D and calcium carbonate, but serum PTH level remained low. A follow-up computed tomography scan showed that the formerly enlarged mediastinal parathyroid gland was markedly reduced in size. Moreover, a hot spot formerly detected by technetium 99m-MIBI (methoxy-isobutyl-isonitrile) scintigraphy in the mediastinum disappeared after this episode. The authors considered that necrosis of the enlarged ectopic parathyroid gland, probably due to infarction, resulted in hypocalcemia. To the authors' knowledge, this is the first case report of spontaneous mediastinal parathyroid autoinfarction after parathyroidectomy in hemodialysis patients.

Choristoma↗

Surgical treatment of secondary hyperparathyroidism.

Secondary hyperparathyroidism is a recognized complication which develops in patients on hemodialysis for chronic renal failure. Parathyroidectomy may be required in patients with severe renal osteodystrophy, intractable pruritus, soft tissue and vascular calcifications or neuromuscular abnormalities. Three different operations have been employed in the treatment of patients with secondary hyperparathyroidism: total parathyroidectomy, radical subtotal (3 1/2 gland) parathyroidectomy and total parathyroidectomy with heterotopic autotransplantation. The last technique has been the procedure of choice in our group because the parathyroid mass is effectively reduced, and the results are comparable to those obtained with other techniques. Furthermore, the complication of graft dependent hyperparathyroidism, should it develop, can be managed by excising a portion of the transplanted tissue under local anesthesia.

Child↗

Role of phosphorus in the pathogenesis of secondary hyperparathyroidism.

Secondary hyperparathyroidism (SH) and hyperplasia of the parathyroid glands (PTG) are universal complications in patients with CRF. In early renal failure, reduction in serum calcitriol and moderate decreases in ionized calcium contribute to greater synthesis and secretion of PTH. As renal disease progresses, a reduction in parathyroid expression of vitamin D receptor and calcium receptor renders the PTG more resistant to both calcitriol and calcium. High dietary phosphorus (P), independent of calcium and calcitriol, further enhances uremia-induced PTG hyperplasia and PTH synthesis and secretion, the latter by posttranscriptional mechanisms. Once SH develops, dietary P restriction can return the high serum PTH levels toward normal, however, parathyroid hyperplasia persists. Studies in our laboratory identified 2 of the mechanisms involved in the opposing effects of high and low dietary P content on PTG growth. Whereas high dietary P increases parathyroid expression of transforming growth factor alpha (TGFalpha), a growth promoter, P restriction induces the cyclin-dependent kinase inhibitor p21, an inducer of growth arrest. Both effects of P are specific for the PTG. No increase in either protein was observed in liver or intestine. TGFalpha induction of hyperplasia involves binding to the epidermal growth factor receptor and activation of mitogen activated protein (MAP) kinases cascades. p21 blocks progression through the cycle and cell division by inactivating cyclin/cyclin-dependent kinase complexes. Preventing hyperphosphatemia and elevated Ca x P product in renal failure not only ameliorates the progression of SH and bone disease but also the morbidity and mortality resulting from vascular calcification.

Animals↗

Vitamin D analogues for the management of secondary hyperparathyroidism.

Secondary hyperparathyroidism complicating chronic kidney disease requires therapy to minimize the effects of parathyroid hormone (PTH) on bone and other tissues. Low levels of calcitriol in blood play a major role in the initiation and maintenance of hyperparathyroidism. Accordingly, administration of calcitriol has been demonstrated to be an effective form of therapy. While this therapy is effective in controlling hyperparathyroidism, side effects of calcitriol, including increased intestinal absorption of calcium and phosphate, often complicate therapy by giving rise to hypercalcemia and hyperphosphatemia, which may be important risk factors for extraskeletal calcifications. Over the last several years, interest has turned toward vitamin D analogs, which may be able to affect parathyroid function with lesser effects on calcium and phosphorus in serum, and thereby, minimizing the undesirable toxicities of vitamin D therapy. Two vitamin D analogs are available in this country for the control of hyperparathyroidism in the setting of advanced kidney disease, and include 19-nor-1,25-dihydroxyvitamin D(2) (paricalcitol), and more recently, 1-alpha-hydroxyvitamin D(2) (doxercalciferol). 19-nor-1,25-dihydroxyvitamin D(2) is widely used and was evaluated extensively in animals, revealing that this vitamin D sterol had a selective effect on increasing PTH suppression, with lesser effects on calcium and phosphorus metabolism. These studies lead to clinical trials which showed the efficacy of this therapy in that PTH could be lowered satisfactorily in patients with calcium and phosphorus values within the normal range. The selectivity of 19-nor-1,25-dihydroxyvitamin D(2) seen in animals has also been found in humans, such that therapy with this sterol can achieve control of hyperparathyroidism with a wider therapeutic window than the predecessor, calcitriol. 1-alpha-hydroxyvitamin D(2) has recently been introduced, but in contrast to paracalcitol, there is little reason to believe that there is any selectivity in its actions in terms of suppressing PTH, compared with its ability to raise serum calcium or phosphorus in serum. However, this vitamin D sterol can effectively decrease PTH levels in patients with advanced renal failure. Comparative studies of paricalcitol and doxercalciferol have not been undertaken at the present time. Further studies on the mechanism of actions might explain the differences between these sterols and their effects on the intestinal absorption of calcium and phosphate. At the present, the use of vitamin D analogs can achieve control of hyperparathyroidism with a wider therapeutic window than the native sterol, calcitriol.

Animals↗

New therapies for uremic secondary hyperparathyroidism.

Secondary hyperparathyroidism (SHPT) is a common and serious complication of chronic kidney disease (CKD). It affects more than 300,000 end-stage renal disease patients treated by dialysis and probably more than 3 million patients with CKD worldwide. For a long time, traditional therapies for SHPT had consisted of correcting the hypocalcemia using calcium salts and vitamin D derivatives, preventing the hyperphosphatemia by calcium- or aluminum-containing intestinal phosphate binders, and recently by using no metal-containing intestinal phosphate binders; however, these therapies are limited by the occurrence of hypercalcemia, hyperphosphatemia, and the lack of specificity and long-term efficacy. Moreover, surgical parathyroidectomy (PTX), which remains the gold standard therapy, is not exempt from risk. PTX exposes patients to anesthesia risks, presurgical and postsurgical complications, and in many cases a permanent state of hypoparathyroidism. Thus, the medical treatment of SHPT became an ideal target for the development of new therapies and strategies. The purpose of this article is to provide an overview of these new therapies, including vitamin D analogs, intestinal phosphate binders, calcimimetics, parathyroidectomies, tyrosine kinase inhibitors, azydothymidine, anticalcineurins, N-terminal truncated parathyroid hormone fragments, bisphosphonates, calcitonin, osteoprotegerin, and others. The use of these new therapies alone or in combination may help to optimize the future treatment of SHPT in CKD patients.

Acidosis↗

A deficit of calcitriol synthesis may not be the initial factor in the pathogenesis of secondary hyperparathyroidism.

Secondary hyperparathyroidism (HPT) develops early in chronic renal failure (CRF) at a time when plasma calcitriol levels are normal. At this time, PTH are higher than normal controls and serum phosphorous levels are lower. A decrement in total serum Ca is noted, after an oral phosphate load, only in patients with ERF. These data suggest that factors, other than a decrease in calcitriol synthesis, may be involved in the pathogenesis of HPT. A hypothesis is forwarded suggesting that an alteration in the newly cloned calcium sensor receptor may be the earliest abnormality in the HPT, preceding a decrease in plasma calcitriol levels.

Adolescent↗

Vitamin D analogues for secondary hyperparathyroidism.

Secondary hyperparathyroidism (2HPT), a common disorder in patients with chronic renal failure, develops in response to phosphate retention and low serum 1,25-dihydroxyvitamin D(3) (1,25(OH)(2)D(3), calcitriol). Replacement therapy with calcitriol or its precursor 1alpha-hydroxyvitamin D(3) (1alphaOHD(3), alfacalcidol) often produces hypercalcaemia, especially when combined with calcium-based phosphate binders. In addition, these vitamin D compounds can aggravate the hyperphosphataemia in these patients. Several vitamin D analogues have been developed that retain the direct suppressive action of 1,25(OH)(2)D(3) on the parathyroid glands but have less calcaemic activity, thereby offering a safer and more effective means of controlling 2HPT. 1,25-Dihydroxy-19-norvitamin D(2) (19-norD(2)) and 1alpha-hydroxyvitamin D(2) (1alphaOHD(2)) are available in the US and 1,25-dihydroxy-22-oxavitamin D(3) (22-oxacalcitriol, OCT) and 1,25-dihydroxy-26,26,26,27,27,27-hexafluorovitamin D(3) (1,25(OH)(2)26,27F6 D(3), falecalcitriol) have been approved for use in Japan. Animal studies have demonstrated that OCT and 19-norD(2) have a wider therapeutic window for suppression of parathyroid hormone (PTH) because of their lower calcaemic and phosphataemic activities. The low calcaemic activity of OCT has been attributed to its rapid clearance, which prevents sustained effects on intestinal calcium absorption and bone resorption, but still allows a prolonged suppression of PTH gene expression and parathyroid cell growth. The calcaemic activity of 19-norD(2) diminishes with the duration of treatment by as yet unknown mechanisms. The lower toxicity of 1alphaOHD(2), compared with 1alphaOHD(3), has also been noted with chronic, but not acute administration, perhaps due to differential metabolism. The unique actions of falecalcitriol may also result from an altered metabolism. A clear understanding of the molecular basis for the selectivity of vitamin D analogues on parathyroid function may allow the design of even more effective analogues.

Calcitriol↗

Renal osteodystrophy and secondary hyperparathyroidism.

Secondary hyperparathyroidism with marked parathyroid hyperplasia is the major type of renal osteodystrophy. In addition to classic stimuli for parathyroid hormone (PTH) such as decreased concentrations of ionized calcium and 1,25-dihydroxyvitamin D(3) (1,25(OH)(2)D(3), calcitriol), several mechanisms have been suggested. Those include decreased density of calcitriol and calcium-sensing receptors, as well as the direct action of phosphate. Skeletal resistance to PTH was initially recognized as a blunted calcaemic action of PTH, which has been considered another stimulus for PTH secretion. Once suppression of PTH became possible by newly developed therapeutic modalities, it has been shown that this background abnormality plays an important role in the development of adynamic bone disease in uraemic patients. However, the mechanism of skeletal resistance to PTH has not been fully elucidated yet, but recent papers suggested that osteoprotegerin (OPG) accumulating in uraemic serum might inhibit osteoclastogenesis induced by PTH.

Calcitriol↗

Effects of 1,25-dihydroxy-22-oxavitamin D(3) on parathyroid gland function in haemodialysis patients with secondary hyperparathyroidism.

Secondary hyperparathyroidism (2HPT) is characterized by an abnormal threshold for suppression of parathyroid hormone (PTH) secretion by serum ionized Ca (ICa). It is therefore critical to examine the threshold of PTH secretion in chronic renal failure patients in relation to the physiopathological conditions and the severity of 2HPT. The effect of 1,25-dihidroxy-22-oxavitamin D(3) (22-oxacalcitriol, OCT) on parathyroid gland function was investigated in six haemodialysis patients with 2HPT. OCT was administered three times a week for 26 consecutive weeks. The maximum serum PTH (PTHmax), the minimum serum PTH (PTHmin), and ICa concentration required to inhibit 50% of PTHmax were estimated based on the model formula of the sigmoid curve describing the relationship between ICa and intact-PTH levels. The sigmoid ICa-PTH curves displayed a downward shift at 12 and 26 weeks of OCT treatment. Parathyroid gland function, as reflected by both PTHmax and PTHmin, decreased over time. A steep slope was found at 12 and 26 weeks, compared with that at the start of OCT treatment. There were no marked changes in the set point of calcium. Hypercalcaemia and elevated creatine phosphokinase, probably due to OCT therapy, were observed during the study period. In view of the findings that the sigmoid ICa-PTH curve displayed a downward shift, that both PTHmax and PTHmin decreased, and that functional mass of the parathyroid gland was reduced, OCT appears to be useful in ameliorating parathyroid gland function, contributing to the management of 2HPT.

Adult↗

The need for better control of secondary hyperparathyroidism.

Secondary hyperparathyroidism (SHPT), a frequent complication of chronic kidney disease, develops in response to an imbalance in the serum levels of calcium, phosphorus and vitamin D as a result of altered metabolism. Raised serum levels of parathyroid hormone (PTH) and calcium-phosphorus product have a major effect on morbidity and mortality in dialysis patients. The new Kidney Disease Outcomes Quality Initiative (K/DOQI) guidelines, formulated by the National Kidney Foundation in the USA, propose strict targets for the control of serum levels of PTH, calcium and phosphorus. Meeting these targets will be a challenge for clinicians, because the traditional therapies for SHPT, such as vitamin D sterols and calcium-based phosphate binders, often exacerbate mineral imbalances. Results from a number of recent studies indicate that the majority of haemodialysis patients currently do not meet these new targets. Thus, there is a definite need to improve PTH, calcium and phosphate management of dialysis patients to reduce the incidence of uraemic bone disease and related disturbances of mineral metabolism as well as their unacceptably high cardiovascular morbidity and mortality.

Calcium↗

Management of secondary hyperparathyroidism.

Secondary hyperparathyroidism (SHPT) remains an inevitable consequence of untreated chronic uremia. It is the result of a combination of phosphate (P) retention, failure of calcitriol synthesis, and hypocalcemia. Therapies used to correct these abnormalities, namely active vitamin D replacement, calcium (Ca) supplementation, and phosphate (P) restriction, have moderate efficacy but are prone to unacceptable side-effects. However, there have been new developments in the control of P, vitamin D replacement and modulation of the Ca sensing receptor (CaSR) using calcimimetics. Sevelamer, and in the near future lanthanum, are offering a reasonable level of P control without the toxicities inherent with either aluminum- or Ca-based phosphate binders, and other phosphate binders are in development. 'Non calcemic' vitamin D metabolites include 22-oxacalcitriol, paricalcitol, and doxercalciferol. In various experimental models 22-oxacalcitriol, in particular, exhibits impressive suppression of parathyroid hormone (PTH) with minimal calcemia, although it has been less impressive when compared with calcitriol in controlled studies in hemodialysis (HD) patients. The advantages of these agents over conventional treatment with calcitriol or alfacalcidol remain uncertain. Cinacalcet, a calcimimetic agent that up-regulates the sensitivity of the CaSR in parathyroid and other cells, is a new type of therapy for SHPT that simultaneously reduces the concentrations of PTH, Ca, and P in HD patients, enabling a significant number to achieve K/DOQI or other national guidelines. The extent to which this new therapy will improve clinical outcomes remains uncertain. In conclusion, with the advent of new therapies the emphasis in the management of SHPT has evolved to incorporate reduction of Ca loading, control of PTH within specific target ranges, and avoidance of hypercalcemia, hyperphosphatemia and elevation of the calcium phosphorus product.

Calcium↗

Renal transplantation and secondary hyperparathyroidism.

Secondary hyperparathyroidism (2'HPT) improves after renal transplantation (RTx) along with recovered function of the renal allograft. However, normal renal function does not last long due to rejection, drug-induced nephrotoxic nepthropathy, or recurrence of post-transplant glomerulonephritis. Therefore, improved calcium and phosphate metabolism, and parathyroid function after RTx fluctuate in accordance with the function of the renal allograft. In cases with severe 2'HPT, parathyroidectomy should be performed before RTx because hypercalcemia due to secondary or tertiary hyperparathyroidism aggravates the renal allograft function. In the follow-up of mild 2'HPT after RTx, hypercalcemia and vascular calcification should be monitored carefully by serum parathyroid hormone, calcium and phosphate concentrations, alkaline phosphatase activity, and bone X-ray film. If serum calcium level exceeds 12 mg/dl, parathyroidectomy (PTx) should be performed to prevent the acceleration of vascular calcification. Total PTx with forearm allograft is a preferred surgical procedure for 2'HPT even after RTx.

Cholecalciferol↗

[Secondary hyperparathyroidism].

Secondary (renal) hyperparathyroidism appears in chronic renal failure, sometimes in patients on chronic dialysis. Other causes includes rickets and osteomalacia. These diseases are associated with poor calcium and vitamin D absorbtion from the small bowel. Two patients with chronic renal failure maintained on chronic haemodialysis from two and three years, respectively underwent subtotal parathyroidectomy: removal of three glands and preserving a half of a gland in situ. The diagnosis and surgical indication was made upon clinical (bone pain and severe itching), radiological (demineralisation, ectopic calcifications) and biochemical (hypercalcemia, hyperphosphoremia, increased values of alkaline phosphatases) arguments. Postoperatively the improvement is defined by a return to normal in the clinical, laboratory and radiological parametres. The most appropriate operation for secondary hyperparathyroidism is still unresolved one of two techniques is performed according to the preference of the surgeon: subtotal parathyroidectomy or total parathyroidectomy with autotransplantation of parathyroid fragments into forearm muscle.

Adult↗

Fluorescence-guided minimally invasive parathyroidectomy: a novel surgical therapy for secondary hyperparathyroidism.

Secondary hyperparathyroidism (SHPT) is a severe and frequent complication in patients with advanced chronic kidney disease, characterized by hyperplasia of all parathyroid glands and elevated serum parathyroid hormone levels. When surgery is required to prevent cardiovascular consequences, bone pain, osteoporosis, or even soft-tissue calcifications, detection of the enlarged glands often can be difficult because of their variability in number and location. A novel surgical technique, fluorescence-guided minimally invasive parathyroidectomy, may facilitate intraoperative localization of parathyroid glands. A 52-year-old woman with SHPT underwent minimally invasive videoscopic-assisted parathyroidectomy after photosensitization with aminolevulinic acid (ALA): Under special fluorescence illumination by D-Light (Karl Storz Co, Tuttlingen, Germany), bilateral neck exploration was performed. All enlarged parathyroid glands were identified because of their ALA-induced intense red fluorescence. Such surrounding structures as thyroid, lymph nodes, and soft tissue remained nonfluorescent and could be distinguished easily from parathyroid glands. Total parathyroidectomy with autotransplantation into the sternocleidoid muscle was performed. In patients with SHPT, exploration of all parathyroid glands during surgery is mandatory. However, to date, there is no convincing technical aid for the surgeon to facilitate this procedure. The ALA-induced fluorescence technique represents an innovative visual detection method for intraoperative identification of parathyroid glands. The technique serves as an additional tool requiring only moderate technical and clinical expenditure.

Chronic Disease↗