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Clinical and diagnostic features of patients with suspected Klinefelter syndrome.

Klinefelter syndrome, with an incidence of 1:600 male newborns, is the most frequent form of male hypogonadism. However, despite its relatively high frequency, the syndrome is often overlooked. To prevent such oversights, the clinical features should be better characterized, and simple screening tests should be used more frequently. In a cohort of 309 patients suspected of having Klinefelter syndrome, we evaluated the clinical symptoms as well as the diagnostic value of the Barr body test for screening procedures. On the basis of chromosome analysis, 85 patients (group I) were diagnosed as having Klinefelter syndrome, and 224 patients had a 46,XY karyotype (group II). Barr body analysis revealed a specificity of 95% and a sensitivity of 82% for the diagnosis of Klinefelter syndrome. General features (eg, reason for admission, age, age of the parents, body weight, and frequency of maldescended testes) were not different between the groups, except that group I had a higher proportion of patients with a lower educational background. Compared to group II, patients with Klinefelter syndrome were taller (P <.001); had smaller testis volumes (P <.0001), higher follicle-stimulating hormone (FSH) and luteinizing hormone (LH) values; and carried a tendency for less androgenic phenotype and secondary hair distribution. Testosterone, estradiol, sex hormone-binding globulin (SHBG), and prostate-specific antigen (PSA) serum levels as well as prostate volume were not significantly different between the groups. In patients who provided an ejaculate, azoospermia was found in 54% of the patients in group II and in 93% of the patients with Klinefelter syndrome. Although not exclusively characteristic for Klinefelter syndrome, the combination of low testicular volume and azoospermia, together with elevated gonadotropins, is highly indicative for a Klinefelter syndrome and should stimulate further clinical investigations. Barr body analysis provides a quick and reliable screening test, which, however, must be confirmed by karyotyping.

Adult↗

Diagnosis and management of the adolescent boy with Klinefelter syndrome.

Klinefelter syndrome is the most common sex chromosome disorder, affecting approximately 1/500 to 1/1000 males. The condition results when one or more extra X chromosomes are present in the cells of XY fetuses. Although the clinical presentation is variable, all males with Klinefelter syndrome demonstrate hypogonadism, impaired spermatogenesis, and androgen deficiency. Treatment options include testosterone replacement for correction of the androgen deficiency and tailoring of school curricula to address specific areas of learning difficulties. Adolescence can be a challenging time for any child, but for boys with Klinefelter syndrome who receive proper guidance the transition through puberty should not be a time for undue anxiety, Most boys with Klinefelter syndrome do not differ vastly from their peers. Several manifestations of the syndrome, however, should be monitored during adolescence and require the primary care physician's attention.

Adolescent↗

Anterior mediastinal immature teratoma with precocious puberty in a child with Klinefelter syndrome.

Klinefelter syndrome occurs in approximately 1 in 1000 males. A 4-year-old boy presented with precocious puberty and an anterior mediastinal mass. Serum alpha-fetoprotein and human chorionic gonadotropin levels were mildly increased. Computed tomography revealed a germ cell tumor (GCT) of the mediastinum. Complete resection of the tumor was performed. Histologic analysis revealed an immature teratoma. Males with Klinefelter syndrome develop GCTs at a rate 50 times higher than unaffected males. This case report calls attention to the need to rule out Klinefelter syndrome in boys who present with precocious puberty and a mediastinal GCT.

Child, Preschool↗

Metabolic changes in Klinefelter syndrome.

Klinefelter syndrome is a hypergonadotropic hypogonadism determined by the presence of one or more extra X chromosomes and has an incidence of 1:800 males. It was shown that in Klinefelter syndrome mortality is increased due to diabetes, cardiovascular, respiratory and digestive diseases. Our goal was to assess the presence of metabolic changes which can increase cardiovascular risk. We compared 31 untreated Klinefelter patients aged 19-54 years (mean age 33.84 years, SD 11.79 years) with 31 age matched controls. Hypercholesterolemia was present in 56.67% of Klinefelter patients and correlated with age and the magnitude of androgenic deficit. None of the patients had diabetes mellitus but glycemic values above 100 mg% were present in 16.13% of cases (vs 3.2% in controls). 35.5% of Klinefelter patients and controls were overweight and 16.1% of Klinefelter patients were obese vs 9.7% of controls.

Adult↗

Increased mortality in Klinefelter syndrome.

Klinefelter syndrome (KS) is the most prevalent sex chromosome disorder in man and is a common cause of hypogonadism. To describe mortality in KS, we conducted an epidemiological study, using Danish registers covering the entire nation. We constructed a cohort of 781 Danish boys and men diagnosed with KS (from the Danish Cytogenetic Central Register) and a control group of 3803 men, matched by month and year of birth. Vital status was obtained from the Centralized Civil Register, and causes of death were obtained from the National Register of Causes of Death. We used Cox regression with stratification on groups of diagnoses according to International Classification of Diseases, 10th version. Where significant results were found, subsequent analyses were performed on subdivisions of diagnoses. We found that Klinefelter syndrome was associated with a significant increase in mortality risk of 40% (hazard ratio, 1.40; 95% confidence interval, 1.13-1.74), corresponding to a significantly reduced median survival of 2.1 yr. The increased mortality was mainly due to increased mortality from infectious, neurological, circulatory, pulmonary, and urinary tract diseases. Whether this increase is caused by the syndrome per se (i.e. hypogonadism) or other factors, e.g. socioeconomic, are involved is presently unknown.

Adult↗

Extragonadal germ cell tumors are often associated with Klinefelter syndrome.

Klinefelter syndrome is a well documented abnormality of sex differentiation, with an incidence of 1 in 600 newborn males. It is characterized by a 47,XXY or a mosaic karyotype and clinical findings of hypergonadotrophic hypogonadism, small testes, infertility, reduced body hair, gynecomastia, and tall stature. Other conditions like venous disease, autoimmune disorders, mild neurobehavioral deficit, diabetes mellitus, sexual precocity, and osteoporosis may also affect these patients. Different malignancies such as breast cancer, testicular tumors, leukemia, and lymphomas occur in 1%-2% of the cases. Klinefelter syndrome has been associated with other malignancies such as extragonadal germ cell tumors; however, some authors consider this association an unusual finding. We report the molecular cytogenetic studies performed in 4 young males with mediastinal germ cell tumors. In 2 cases, a 47,XXY karyotype was recognized in different tissues by fluorescent in situ hybridization, whereas the other 2 had a normal XY karyotype. We propose that in young patients with mediastinal teratoma, a cytogenetic analysis must always be performed.

Adolescent↗

Klinefelter syndrome.

Klinefelter syndrome is the most common sex chromosome disorder. Affected males carry an additional X chromosome, which results in male hypogonadism, androgen deficiency, and impaired spermatogenesis. Some patients may exhibit all of the classic signs of this disorder, including gynecomastia, small testes, sparse body hair, tallness, and infertility, whereas others, because of the wide variability in clinical expression, lack many of these features. Treatment consists of testosterone replacement therapy to correct the androgen deficiency and to provide patients with appropriate virilization. This therapy also has positive effects on mood and self-esteem and has been shown to protect against osteoporosis, although it will not reverse infertility. Although the diagnosis of Klinefelter syndrome is now made definitively using chromosomal karyotyping, revealing in most instances a 47,XXY genotype, the diagnosis also can be made using a careful history and results of a physical examination, with the hallmark being small, firm testes. As it affects 1 in 500 male patients and presents with a variety of clinical features, primary care physicians should be familiar with this condition.

Diagnosis, Differential↗

XXY mice exhibit gonadal and behavioral phenotypes similar to Klinefelter syndrome.

Klinefelter syndrome (XXY males) is the most common sex chromosome aneuploidy. XXY mice were generated by using a four-generation breeding scheme that involves the use of a structurally rearranged Y chromosome, Y*, yielding approximately 50% of the live-born male offspring in the fourth generation with a XXY karyotype. Adult XXY mice have small testes, decreased plasma T levels, and elevated plasma FSH levels. The testes of adult XXY mice contained small seminiferous tubules with intraepithelial vacuolization and absence of germ cells, whereas Leydig cells appeared to be more abundant than their XY littermates. Androgen receptor immunoexpression was localized in Leydig cells and peritubular myoid cells in both XY and XXY mice. Androgen receptor immunoexpression was abundant in the Sertoli cells of XY mice but nearly absent in those of XXY mice. The testicular phenotype was marked by a 23.1% decrease in testis weights in XXY pups beginning at d 7 after birth. Gonocyte numbers were similar in XY and XXY mice at d 1 of age, followed by a 62.6% decrease in the number of gonocytes in the XXY mice on d 3 and further progressive loss in spermatogonia by d 5 and 7. On d 10, only a few spermatogonia remained in the XXY mice. To determine whether the phenotype of XXY mice extended into the neurobehavioral domain, studies were conducted demonstrating impairment of learning and memory function in XXY mice. We conclude that adult XXY mice have testicular failure and learning deficits, similar to its human counterpart, Klinefelter syndrome.

Age Factors↗

Inhibin B and anti-Müllerian hormone, but not testosterone levels, are normal in infants with nonmosaic Klinefelter syndrome.

Klinefelter syndrome is a major cause of infertility in the male. Nevertheless, pregnancies were recently obtained by intracytoplasmic injection of sperm retrieved by surgery or ejaculation, underscoring the need to understand the role of Sertoli and Leydig cell secretions during development. In 18 infants with prenatally diagnosed homogenous 47,XXY karyotype, blood samples were taken from birth to 3 yr of age. Inhibin B (INHB), anti-Müllerian hormone (AMH), testosterone, FSH, and LH levels were compared with those in six adolescents with XXY karyotype and reference values established in 215 control infants. In XXY infants FSH, LH, INHB, and AMH did not differ from controls. Testosterone levels during the first trimester exhibited a physiological increase but were lower than in controls (P = 0.0001). Significant correlations were found between testosterone and LH (P < 0001), between INHB and FSH (P = 0.0011), and between AMH and INHB (P = 0.025). In XXY adolescents, AMH and INHB were undetectable. Our findings demonstrate that testosterone secretion is impaired in infants with Klinefelter syndrome. By contrast, INHB and AMH secretions were not altered, which raises the question of the mechanism(s) governing the decline of Sertoli cell function after puberty.

Adolescent↗

XXY male mice: an experimental model for Klinefelter syndrome.

Klinefelter syndrome (47,XXY) is the most common sex chromosome aneuploidy in men. Thus, it is important to establish an experimental animal model to explore its underlying molecular mechanisms. Mice with a 41,XXY karyotype were produced by mating wild-type male mice with chimeric female mice carrying male embryonic stem cells. The objectives of the present study were to characterize the testicular phenotype of adult XXY mice and to examine the ontogeny of loss of germ cells in juvenile XXY mice. In the first experiment the testicular phenotypes of four adult XXY mice and four littermate controls (40,XY) were studied. XXY mice were identified by either Southern hybridization or karyotyping and were further confirmed by fluorescence in situ hybridization. The results showed that the testis weights of adult XXY mice (0.02 +/- 0.01 g) were dramatically decreased compared with those of the controls (0.11 +/- 0.01 g). Although no significant differences were apparent in plasma testosterone levels, the mean plasma LH and FSH levels were elevated in adult XXY mice compared with controls. The testicular histology of adult XXY mice showed small seminiferous tubules with varying degrees of intraepithelial vacuolization and a complete absence of germ cells. Hypertrophy and hyperplasia of Leydig cells were observed in the interstitium. Electron microscopic examination showed Sertoli cells containing scanty amounts of cytoplasm and irregular nuclei with prominent nucleoli. The junctional region between Sertoli cells appeared normal. In some tubules, nests of apparently degenerating Sertoli cells were found. In the second experiment the ontogeny of germ cell loss in juvenile XXY mice and their littermate controls was studied. Spermatogonia were found and appeared to be morphologically normal in juvenile XXY mice. Progressive loss of germ cells occurred within 10 days after birth. This resulted in the absence of germ cells in the adult XXY mice. We conclude that a progressive loss of germ cells occurring in early postnatal life results in the complete absence of germ cells in adult XXY mice. The XXY mouse provides an experimental model for its human XXY counterpart, Klinefelter syndrome.

Animals↗

Down syndrome, Turner syndrome, and Klinefelter syndrome: primary care throughout the life span.

Down syndrome, Turner syndrome, and Klinefelter syndrome constitute the most common chromosomal abnormalities encountered by primary care physicians. Down syndrome typically is recognized at birth, Turner syndrome often is not recognized until adolescence,and many men with Klinefelter syndrome are never diagnosed. Although each syndrome is caused by an abnormal number of chromosomes, or aneuploidy, they are distinct syndromes with learning disabilities and a predisposition toward autoimmune diseases,endocrinologic disorders, and cancers. Optimal health care requires a thorough knowledge of the unique health risks, psychoeducational needs, functional capabilities, and phenotypic variation associated with each condition. Syndrome-specific health care should complement standard preventive health care recommendations. Checklists and syndrome-specific growth grids should be used. Ongoing communication between specialists and primary care physicians and between pediatric and adult clinicians is essential. Support groups and Internet resources can benefit affected individuals and their families immensely.

Adolescent↗

[Some new aspects of the Klinefelter syndrome].

Klinefelter syndrome (KS) is the most frequent form of male hypogonadism. Still, at least 50% ofcases are not diagnosed, partly because of the great variation in the clinical symptoms, partly because physicians are unfamiliar with KS. Timely treatment with testosterone can contribute to a more positive body image and, consequently, to a healthier psychosexual development in men with KS. Men with KS experience significantly more health problems and an increased risk ofa malignancy. New reproductive techniques no longer automatically mean that men with KS will remain infertile. Treatment with testosterone is in principle life-long to prevent osteoporosis and loss of muscle mass and strength.

Body Image↗

Working memory and relational reasoning in Klinefelter syndrome.

Klinefelter syndrome (KS) is a sex chromosome abnormality associated with male infertility and mild cognitive deficits. Individuals with KS have been reported to have impaired verbal ability, as well as deficits in executive function. To further understand the nature of their deficits, we assessed specific elements of frontal lobe function such as working memory and relational reasoning. Men with KS exhibited a deficit in a transitive inference task in which participants ordered a set of names based on a list of propositions about the relative heights of the people named. This deficit was present even for items in which the propositions were given in order, so a chaining strategy could be used. Men with KS are also impaired on the n-back task, which uses letters as stimuli. In contrast, these men performed as well as controls in nonverbal reasoning (Raven's Progressive Matrices). These results suggest that men with KS have intact nonverbal reasoning abilities, but that a difficulty in encoding verbal information into working memory may underlie their executive and linguistic impairments.

Adult↗

Renal cell carcinoma with X;1 translocation in a child with Klinefelter syndrome.

Klinefelter syndrome (KS) is a sex chromosome abnormality occurring in 1 in 1,000 males. An association with leukemia, germ cell tumor, and male breast cancer has been suggested in KS. Such information is important for professionals caring for KS patients as the condition is frequently not clinically recognizable until after puberty. We report on a renal cell carcinoma (RCC) in a 10-year-old boy with KS. He developed intermittent hematuria at age 10 years and was diagnosed with a right kidney mass, which on pathology was identified as RCC. In addition, he was known to have learning disabilities and language delays. Analysis of peripheral blood chromosomes showed a 47,XXY karyotype while analysis of tumor cells demonstrated clonal abnormalities including a translocation between chromosomes X and 1, designated 47,XXYc,t(X;1)(p11.2;q21)[6]/47,XXYc,t(X;1),r(Xp)[2]/46,X XYc,-X,t(X;1)[7]. Renal cell carcinoma is rare in childhood and is not previously reported in KS. The oncogenetic significance of the chromosomal regions involved in this translocation is discussed in relation to the congenital abnormality of the patient.

Carcinoma, Renal Cell↗

The psychoeducational profile of boys with Klinefelter syndrome.

Klinefelter syndrome (KS) affects about 1 in 900 males due to an extra X chromosome. Although there are no obvious physical features associated with childhood KS, many boys demonstrate a cognitive deficit in verbal processing. The first section of this article integrates the extant literature on intelligence and achievement outcomes in boys with KS. The second section presents our findings from a 20-year study involving one of the largest unselected cohorts of boys with KS. We followed 36 boys with KS and 33 sibling controls from 6 until 20 years of age. Boys with KS are shown to demonstrate a verbal cognitive deficit and significant underachievement in reading and spelling, as well as in arithmetic. These problems, which are evident from early school years, increase with age such that by late adolescence, boys with KS are four to five grade levels behind. In addition, we also found that they were most likely to have a generalized type of learning disability, with very few boys indicating a pure reading or pure arithmetic problem. They also showed deficits in written language skills and acquisition of knowledge-based subject material were also problematic. Despite significant underachievement and frequent grade failure, many boys with KS had completed high school, and a few were also pursuing postsecondary educations. The discussion section examines how their language-based disability affects comprehension and learning, leading to underachievement.

Achievement↗

Recombination in men with Klinefelter syndrome.

Klinefelter syndrome (KS: 47,XXY), occurs in one in 1000 male births. Men with KS are infertile and have higher rates of aneuploidies in sperm compared with normal fertile men. In the course of analyzing recombination in a population of infertile men, we observed that four men in our study presented with KS. We examined whether these men differed in recombination parameters among themselves and relative to normal men. Even though the number of men with KS analyzed was small, we observed remarkable variation in spermatogenesis. In spite of the fact that the men had the same genetic cause for infertility, two of four KS patients had few or no spermatogenic cells that progressed through meiosis to the pachytene stage, whereas the other two men produced abundant pachytene cells that had recombination frequencies comparable with those of fertile men, although one had a significant reduction in fidelity of synapsis. Moreover, regardless of histological appearance, examination of outcomes of assisted reproduction indicated that sperm were extracted from testis biopsies in all four cases, and when used in assisted reproductive practices chromosomally normal babies were born. These results reinforce that: (i) men with the same underlying genetic cause for infertility do not present with uniform pathology, (ii) the checkpoint machinery that might arrest spermatogenesis in the face of chromosomal abnormalities does not prevent pockets of complete spermatogenesis in men with KS, and (iii) aneuploidy, in some cases, is compatible with birth of a chromosomally normal child, suggesting that sperm produced from a background of aneuploidy can be normal in men with KS.

Case-Control Studies↗

Natural history of seminiferous tubule degeneration in Klinefelter syndrome.

Klinefelter syndrome (47,XXY) is characterized by small, firm testis, gynaecomastia, azoospermia and hypergonadotropic hypogonadism. Degeneration of the seminiferous tubules in 47,XXY males is a well-described phenomenon. It begins in the fetus, progresses through infancy and accelerates dramatically at the time of puberty with complete hyalinization of the seminiferous tubules, although a few tubules with spermatogenesis may be present in adult life. Activation of the pituitary-gonadal axis at 3 months of age is seen in Klinefelter boys similar to healthy boys. However, the level of testosterone in Klinefelter boys is significantly lower than in controls. After this 'minipuberty', the hormone levels decline to normal prepubertal levels until puberty. In puberty, an initial rise in testosterone, inhibin B, LH and FSH occurs in Klinefelter boys. However, the rise in testosterone levels off and ends at a low-normal level in young adults. Likewise, serum concentration of inhibin B exhibits a dramatic decline to a low, often undetectable level, concomitantly with a rise in FSH, reflecting the degeneration of the seminiferous tubules. Many hypotheses about the underlying mechanism of the depletion of the germ cells in Klinefelter males have been reported and include insufficient supranumerary X-chromosome inactivation, Leydig cell insufficiency and disturbed regulation of apoptosis of Sertoli and Leydig cells. However, at present, the exact mechanism remains unclear. In this article, we summarize current knowledge on the development of the classical endocrinological and histological features of 47,XXY males from fetus to adulthood and review the literature concerning the degeneration of the seminiferous tubules in this syndrome.

Age Factors↗

[Concordance of Kearns-Sayre syndrome and Klinefelter syndrome].

In the last years the Kearns-Sayre-Syndrome has been defined with the typical trias of chronic external ophthalmoplegia, pigmentary retinal dystrophy and cardiac conduction defects. Today it is no longer believed to present an entity but a variant of the multiple plussymptoms of the ophthalmoplegia-plus group. In pediatrics the existence of this clinical disorder is not yet well acknowledged. The case of a 16-year-old patient is used as an example for the impressive clinical symptoms and the involvement of several organs in this clinical disorder. The combination with a Klinefelter-Syndrome has not previously been reported.

Adolescent↗