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Biomedical subjects

C Krausz

Publications and source records attributed to C Krausz.

At least 37 records · Page 2Linked to original sources

Sex chromosome mosaicism in males carrying Y chromosome long arm deletions.

Microdeletions of the long arm of the Y chromosome (Yq) are a common cause of male infertility. Since large structural rearrangements of the Y chromosome are commonly associated with a 45,XO/46,XY chromosomal mosaicism, we studied whether submicroscopic Yq deletions could also be associated with the development of 45,XO cell lines. We studied blood samples from 14 infertile men carrying a Yq microdeletion as revealed by polymerase chain reaction (PCR). Patients were divided into two groups: group 1 (n = 6), in which karyotype analysis demonstrated a 45,X/46,XY mosaicism, and group 2 (n = 8) with apparently a normal 46,XY karyotype. 45,XO cells were identified by fluorescence in-situ hybridization (FISH) using X and Y centromeric probes. Lymphocytes from 11 fertile men were studied as controls. In addition, sperm cells were studied in three oligozoospermic patients in group 2. Our results showed that large and submicroscopic Yq deletions were associated with significantly increased percentages of 45,XO cells in lymphocytes and of sperm cells nullisomic for gonosomes, especially for the Y chromosome. Moreover, two isodicentric Y chromosomes, classified as normal by cytogenetic methods, were detected. Therefore, Yq microdeletions may be associated with Y chromosomal instability leading to the formation of 45,XO cell lines.

Adult↗

Prognostic value of Y deletion analysis: what is the clinical prognostic value of Y chromosome microdeletion analysis?

In many centres, Y chromosome deletion analysis is still not performed routinely and if so, the results are used for genetic counselling but are not considered as having a useful prognostic value. The type of deletion (AZFa, b or c) has been proposed as a potential prognostic factor for sperm retrieval in men undergoing TESE. AZFc deletions and partial AZFb deletions are associated with sperm retrieval in approximately 50% of cases while in the case of a patient with complete AZFb deletion the probability of finding mature spermatozoa is virtually nil. Therefore the extent and position of a Y microdeletion is important (complete or partial). The prognostic value of Y chromosome deletion analysis in cases of oligozoospermia is important when one considers the progressive decrease of sperm number over time in men with AZFc deletions. Cryo-conservation of spermatozoa in these cases could avoid invasive techniques, such as TESE/ICSI, in the future. Male offspring that are conceived by ICSI or IVF techniques from father with oligozoospermia or azoospermia would also benefit from knowledge of their Y status, since the identification of the genetic defect will render future medical or surgical therapies unnecessary. Y microdeletion screening is therefore important, not only to define the aetiology of spermatogenic failure, but also because it gives precious information for a more appropriate clinical management of both the infertile male and his future male child.

Biological Factors↗

Absence of mutations involving the INSL3 gene in human idiopathic cryptorchidism.

The aetiology of cryptorchidism is for the most part unknown and appears to be multifactorial. Recently, a product of Leydig cells termed Leydig insulin-like hormone (INSL3) has been proposed as a putative trophic hormone of the first part of descent. Absence of Insl3 in male mice results in bilateral cryptorchidism and mutations involving this gene may be a cause of cryptorchidism in man. We sequenced both exons of the human INSL3 gene in 31 men who presented with idiopathic unilateral or bilateral cryptorchidism. The only sequence variant was an amino acid substitution in the C-peptide of the molecule. This change was also found in a control group of normal fertile men indicating that it is a polymorphism unrelated to the phenotype. These results suggest that mutations involving the human INSL3 gene are not a common cause of cryptorchidism in man.

Amino Acid Sequence↗

Y chromosome and male infertility.

Male factor infertility accounts for about half the cases of couple infertility. In more than 60% of cases the origin of reduced testicular function is unknown but they may have an unidentified genetic anomaly. Microdeletions of the long arm of the human Y chromosome are associated with spermatogenic failure and have been used to define three regions of Yq (AZFa, AZFb and AZFc) that are recurrently deleted in infertile males. Several genes have been identified within this region and have been proposed as candidates for infertility. Many of these genes encode proteins involved in post-transcriptional gene expression and therefore could participate in the sperm maturation process. About 10-15% of azoospermic and about 5-10% of severely oligozoospermic men have Yq microdeletions. The deletions are associated with a wide range of histological pictures ranging from Sertoli Cell Only Syndrome (SCOS) to spermatogenic arrest and severe hypospermatogenesis. Assisted reproduction techniques such as in vitro fertilization (IVF) and Intra Cytoplasmic Sperm Injection (ICSI) alone, or in association with testicular sperm retrieval, represent an efficient therapy for these patients. However the potential of these techniques to transmit genetic defects causing male infertility raises the need for a systematic genetic screening and genetic counselling of these patients.

Chromosome Deletion↗

Screening for microdeletions of Y chromosome genes in patients undergoing intracytoplasmic sperm injection.

The potential of assisted reproduction techniques to transmit genetic defects causing male infertility raises questions concerning the need for a systematic genetic screen and counselling. Deletions of the long arm of the Y chromosome are frequently associated with a failure of spermatogenesis. The search for Y specific sequences and for the gene families RNA binding motif (RBM) and deleted in azoospermia (DAZ) have been introduced in many laboratories. The incidence of Y microdeletions varies widely between studies, from 1-55%. These differences are mainly related to study design. The highest incidence of microdeletions has been reported in well selected idiopathic azoospermic patients. Since microdeletions have been reported also in non-idiopathic patients, it is important to define what is the deletion frequency in unselected patients. We report Y chromosome microdeletion screening in 134 unselected patients undergoing intracytoplasmic sperm injection (ICSI). In the first part of the study we tested six Y chromosome markers. We found three patients with microdeletions (2.2%). Subdivision of the study population revealed a deletion incidence of 4.7% in azoospermic/cryptozoospermic patients; an incidence of 7% in idiopathic patients and an incidence of 16% in idiopathic azoospermic/cryptozoospermic patients. The second part of the study consisted of a screen for the presence of the Y chromosome genes, DBY, CDY, XKRY, eIF-1A, DAZ and BPY2. No additional gene-specific deletions were found. Further data on gene specific screening are needed especially for selected idiopathic patients.

Base Sequence↗

Overuse of splenic scoring and computed tomographic scans.

BACKGROUND: As the most commonly injured abdominal organ in blunt trauma, the management of splenic injury has undergone evolution. The risk of blood transfusions administered in an attempt to save the spleen has lowered the threshold for operation and also expanded the limits for nonoperative management. An in-depth analysis was carried out of risk factors on patients requiring immediate surgery and those who fail non-operative management based on organ injury scaling grading by computed tomographic (CT) scan and operation. The application of nonoperative management in the elderly population and the use of follow-up CT scanning and sonography in the outpatient setting was also examined. METHODS: Between January of 1991 and June of 1996, 226 consecutive blunt splenic trauma, injured patients at a Level I trauma center were evaluated. All subsequent CT scans and sonograms in the inpatient and outpatient setting were analyzed. The Student's t test, Pearson chi2 analysis with Yates correction, and analysis of variance were used to compare between and among groups. RESULTS: There were 153 men (67.7%), an average age of 34.8 years, an average Injury Severity Score of 24.4, and 28 deaths (12%). There was a significant difference with respect to Injury Severity Score, Glasgow Coma Scale score, Revised Trauma Score, units of packed red blood cells transfused, length of stay, intensive care unit length of stay, mean splenic injury grade, and cost between patients observed initially and those operated on initially. There was no significant difference in age between the two groups. Of 170 patients, 37 patients (22%) who had an initial CT scan underwent immediate exploratory laparotomy. The remaining 133 patients (78%) had nonoperative management; however, 15 patients (11%) failed the period of observation. Five in this group had a laparotomy secondary to other causes and another six were operated on within 24 hours of their injury for their splenic injury. Thus, only four of the nonoperative management patients (3%) actually failed nonoperative splenic management after 24 hours of injury. There were 100 second CT scans obtained. Three of these patients, who had developed hemodynamic instability, required operation for a bleeding spleen. The subsequent CT scan was confirmatory in these three patients who resided in the intensive care unit. All other CT scans and sonograms for clinically unremarkable patients failed to yield any alteration in care based on the scans. CONCLUSION: Blunt splenic injured patients can be safely observed; however, there are certain risk factors in those requiring immediate surgery and those failing nonoperative management. The CT scan underestimates injury, possibly related to a progression of bleeding found at the time of operation. No outpatient studies altered the course of management. Age also did not influence outcome. Thus, in the dedicated trauma center, nonoperative management of blunt splenic injury patients does not lead to undue morbidity or mortality. Once discharged, follow-up radiographs in asymptomatic patients are not necessary.

Adolescent↗

A high frequency of Y chromosome deletions in males with nonidiopathic infertility.

Microdeletions of the long arm of the human Y chromosome are associated with spermatogenic failure and have been used to define three regions of Yq (AZFa, AZFb, and AZFc) that are recurrently deleted in infertile males. In a blind study we screened 131 infertile males (46 idiopathic and 85 nonidiopathic) for Y chromosome microdeletions. Nineteen percent of idiopathic males, with an apparently normal 46,XY chromosome complement had microdeletions of either the AZFa, AZFb, or AZFc region. There was no strict correlation between the extent or location of the deletion and the phenotype. The AZFb deletions did not include the active RBM gene. Significantly, a high frequency of microdeletions (7%) was found in patients with known causes of infertility and a 46,XY chromosome complement. These included deletions of the AZFb and AZFc regions, with no significant difference in the location or extent of the deletion compared with the former group. It is recommended that all males with reduced or absence sperm counts seeking assisted reproductive technologies be screened for deletions of the Y chromosome.

Adult↗

Effects of progesterone on human spermatozoa: clinical implications.

Progesterone is a physiological stimulus of human sperm acrosome reaction. The effects of the steroid, which is present in high levels in the cumulus matrix that surrounds the oocyte, are mediated by an increase of intracellular calcium concentrations, tyrosine phosphorylation of proteins, efflux of chloride and stimulation of activity of phospholipases. These effects are due to activation of a nongenomic pathway. Two different types of receptors for progesterone, distinct from the genomic ones, have been identified on the surface of human spermatozoa. We demonstrated that sperm responsiveness to progesterone is impaired in subfertile patients and that is strictly correlated to the ability of fertilize the oocyte. In addition, the determination of sperm responsiveness is predictive of fertilizing ability with a positive predictive value of 90% and can be clinically useful for the preliminary assessment of the male partner to select the appropriate assisted reproductive technique.

Acrosome Reaction↗

Analysis of Yq microdeletions in infertile males by PCR and DNA hybridization techniques.

Defects in spermatogenesis have been found associated with deletions of different portions of Y chromosome long arm (Yq), suggesting the presence of the azoospermia factor in the control of spermatogenesis. We studied 67 men with idiopathic azoospermia and severe oligozoospermia, cytogenetically normal, for the presence of microdeletions on Yq chromosome. By using polymerase chain reaction (PCR) and Southern blotting techniques we analysed the AZFa, AZFb and AZFc loci on Yq, where deletions have been associated with defects in spermatogenesis. Deletions of a portion of the Y chromosome were detected in five patients. Four of these patients shared deletions in distal Yq11 interval 6, including the DAZ gene, while one patient lacked loci in the proximal Yq11. Testicular histology of two patients bearing distal Yq11 deletions showed two different spermatogenic defects including Sertoli cell-only (SCO) syndrome and maturation arrest, while the patient with microdeletions in the proximal Yq11 showed a SCO phenotype.

Blotting, Southern↗

Progesterone stimulates p42 extracellular signal-regulated kinase (p42erk) in human spermatozoa.

Mitogen-activated protein kinases (MAPK), also known as extracellular signal-regulated kinases (ERKs) are cytoplasmic and nuclear serine/threonine kinases involved in signal transduction of several extracellular effectors. Recently, we have demonstrated that ERKs are present in spermatozoa and are involved in the regulation of the process of capacitation. We report here the effect of progesterone, a well-known inducer of the acrosome reaction in mammalian spermatozoa, on the immunolocalization, phosphorylation and activity of ERKs in capacitated human spermatozoa. We demonstrated that short-term incubation of spermatozoa with progesterone induces phosphorylation and activation of ERKs, resulting in redistribution of the proteins from the post-acrosomal region to the equatorial segment within the sperm head. To investigate the role of ERKs on the biological effects of progesterone, we used the MAPK cascade inhibitor PD098059, which strongly inhibited progesterone-induced activation of ERK-2. This compound did not inhibit progesterone-induced acrosome reaction, although it prevented redistribution of the enzyme to the equatorial region of the sperm head. These results suggest that the two processes, although temporally related, are independent. In conclusion, we provide new insight into the signal transduction pathways involved in the non-genomic action of progesterone in spermatozoa and suggest a possible involvement of ERKs in the process of fertilization.

Acrosome↗

Progesterone-stimulated intracellular calcium increase in human spermatozoa is protein kinase C-independent.

Indirect studies suggested that protein kinase C (PKC) has a role in sperm motility and the acrosome reaction. Physiological inducers of the sperm acrosome reaction include progesterone, which can increase intracellular calcium ([Ca2+]i), tyrosine phosphorylation of proteins and chloride efflux in human spermatozoa. PKC may be involved in progesterone-stimulated acrosome reaction, although controversial results have been obtained concerning the effect of PKC inhibition on progesterone-stimulated [Ca2+]i increase. In the present study, we investigated the direct effect of progesterone on the activity of PKC, as well as the effect of a panel of PKC inhibitors on progesterone-stimulated [Ca2+]i increase and tyrosine phosphorylation of proteins. We found that progesterone stimulates sperm PKC activity and that PKC inhibition with staurosporine and bisindolylmaleimide partially reversed the effect of progesterone on acrosome reaction, indicating an involvement of the enzyme in the effect of the steroid. We next evaluated the effect of three different PKC inhibitors (sangivamycin, staurosporine and bisindolylmaleimide) on progesterone-stimulated [Ca2+]i increase. Neither short-term (15 min) nor long-term (90 min) preincubation with any of the three compounds had a substantial effect on the stimulatory effect of progesterone on sperm [Ca2+]i. Nor was responsiveness to progesterone affected by either short-term (determining activation of PKC) or long-term (determining down-regulation of PKC) incubation with the tumour promoter phorbol myristate acetate (PMA), a known non-physiological stimulator of PKC. These results indicate that progesterone-stimulated calcium influx is independent of PKC activation. In addition, we found that preincubation with PKC inhibitors had a stimulatory effect per se on tyrosine phosphorylation of sperm proteins. When compared with the appropriate control, the effect of progesterone on tyrosine phosphorylation was slightly (but not significantly) reduced by the inhibitors, sangivamycin, staurosporine and bisindolylmaleimide, but was significantly inhibited by calphostin C. These results do not permit a final conclusion on the involvement of PKC in progesterone-stimulated tyrosine phosphorylation of sperm proteins. However, the lack of effect of PMA on tyrosine phosphorylation indicates that PKC stimulation is not sufficient to induce this effect. In conclusion, our results indicate that PKC plays a role in progesterone-induced acrosome reaction and that progesterone-stimulated PKC activation is downstream to stimulation of calcium influx by the steroid.

Calcium↗

Extracellular signal-regulated kinases modulate capacitation of human spermatozoa.

Recent evidence indicates the presence of p21 Ras and of a protein with characteristics similar to mitogen-activated protein kinases (MAPKs), also known as extracellular signal-regulated kinases (ERKs), in mammalian spermatozoa, suggesting the occurrence of the Ras/ERK cascade in these cells. In the present study we investigated the subcellular localization of ERKs and their biological functions in human spermatozoa. Immunohistochemistry, immunofluorescence, confocal microscopy, and immunoelectron microscopy demonstrated localization of ERKs in the postacrosomal region of spermatozoa. After stimulation of acrosome reaction with the calcium ionophore A23187 and progesterone, ERKs were mostly localized at the level of the equatorial region, indicating redistribution of these proteins in acrosome-reacted spermatozoa. Two proteins of 42 and 44 kDa that are tyrosine phosphorylated in a time-dependent manner during in vitro capacitation were identified as p42 (ERK-2) and p44 (ERK-1) by means of specific antibodies. The increase in tyrosine phosphorylation of these proteins during capacitation was accompanied by increased kinase activity, as determined by the ability of ERK-1 and ERK-2 to phosphorylate the substrate myelin basic protein. The role of this activity in the occurrence of sperm capacitation was also investigated by using PD098059, an inhibitor of the MAPK cascade. The presence of this compound during in vitro capacitation inhibits ERK activation and significantly reduces the ability of spermatozoa to undergo the acrosome reaction in response to progesterone. Since only capacitated spermatozoa are able to respond to progesterone, these data strongly indicate that ERKs are involved in the regulation of capacitation. In summary, our data demonstrate the presence of functional ERKs in human spermatozoa and indicate that these enzymes are involved in activation of these cells during capacitation, providing new insight in clarifying the molecular mechanisms and the signal transduction pathways of this process.

Acrosome↗

Cyclic adenosine 3',5'-monophosphate-responsive element modulator gene expression in germ cells of normo- and oligoazoospermic men.

In about one third of infertile men the cause of impaired spermatogenesis is not known. Spermatogenesis appears to be mediated at least in part by the pituitary gonadotropins, which activate the cAMP-dependent signaling pathway. The end point of this pathway is the activation of nuclear transcription factors, such as cAMP-responsive element-binding protein and cAMP-responsive element modulator (CREM). These factors, upon binding to gene sequences identified as cAMP response elements, modulate the expression of germ cell-specific genes that, in turn, promote the completion of spermatogenesis. The expressions of the cAMP-responsive element-binding protein and CREM genes create different isoforms, which can be divided into two groups: activators or repressors of gene regulation. Only CREM repressors are expressed in premeiotic germ cells in mice, whereas a switch to the expression of the CREM activator tau is observed from postmeiotic germ cells onward. Completion of germ cell maturation appears to be dependent on this phenomenon. Recently, mice lacking CREM gene expression have been generated. These animals were infertile and presented a developmental arrest of germ cell maturation at the stage of early spermatid. In this report we demonstrate that CREM gene expression also occurs in human germ cells. In particular, we determined by RT-PCR that a switch from the expression of CREM repressors to CREM activators is present in postmeiotic germ cells in normospermic men. Conversely, in oligoazoospermic patients only the expression of CREM repressors was detected. These data were confirmed by in situ hybridization studies in which transcripts for CREM activators were detected in postmeiotic germ cells in testis specimens showing conserved spermatogenesis, but not in specimens showing maturation arrest at the spermatid stage. Thus, our results indicate that the lack of a switch in the expression of CREM gene isoforms may be related to impaired spermatogenesis in humans.

Cyclic AMP Response Element Modulator↗

Clinical review 100: Evaluation and treatment of the infertile couple.

Infertility by itself does not threaten physical health but has a strong impact on the psychological and social well-being of couples. In the last two decades, progress in caring for the infertile couple, in particular progress in the field of assisted reproduction and micromanipulation, has provided significant hope for many couples for whom hope could not have been offered in the past. This is especially true for bilateral tubal disease and for male factor infertility, as nearly all couples with male factor infertility can now undergo either one (or more) IVF or ICSI attempt(s). For couples with other causes of infertility, however, the differences in pregnancy rates often do not reach statistical significance. We must also remember that the total cost incurred for successful delivery for couples with a better chance of successful IVF (i.e. those with tubal disease) increases from approximately $55,000 in American dollars for the first cycle to $73,000 by the sixth cycle. Because of these high costs, many insurers in the United States and many public health systems in Europe do not cover or only partially cover these procedures. Consequently, the availability of IVF and related therapies frequently depends on the couple's ability to pay. Therefore, after having established the correct diagnosis, appropriate treatment should be counseled to the infertile couple keeping in mind the following points: 1) in subfertile couples expectant management should be reasonably counselled if the age of the woman is less than 30 yr and the duration of infertility is less than 36 months, even if oligozoospermia is present; 2) superovulation and timed intercourse seems also to be a reasonable approach in couples with anovulatory, mild/moderate endometriosis, and unexplained infertility; 3) in unexplained infertility, ovarian stimulation (with clomiphene or gonadotropin) and IUI seem to offer some advantage over ovarian stimulation and timed intercourse; 4) IVF can be a firstline approach in tubal sterility and when IUI or IPI cannot be performed because the number of motile sperm is insufficient, but is usually also the final treatment attempt when other methods have failed. The outcome of IVF is negatively influenced mainly by the woman's age; however, the number of deliveries is also generally lower in couples with male factor; 5) ICSI is a further option, which should be limited to couples: a) with very poor semen parameters; b) previous failed fertilization; c) presence of obstructive or nonobstructive azoospermia in which ICSI is combined with sperm extraction from the epididymis or the testis; 6) international register studies demonstrate that the risk of malformation after conventional IVF is not increased; 7) some reports suggest that incidence of congenital major and minor malformations is not increased in children born after ICSI. However, the rate of sex chromosome anomalies in ICSI fetuses has been reported to be approximately 1% in 585 prenatal diagnoses, a frequency increased by a factor of 4 if compared with naturally conceived live-born babies. ICSI bypasses the physiological selection of spermatozoa that occurs at the level of the testis and epididymis, and in the female reproductive tract as well as at the sperm-oocyte interface. As genetic abnormalities are present in a significant percentage of infertile males with impaired spermatogenesis, karyotyping and analysis of the Y chromosome for microdeletions should be carried out in all potential ICSI fathers. Screening for cystic fibrosis gene mutations should also be performed in azoospermia caused by congenital absence of the vas deferens and seminal vesicles. Appropriate genetic counseling should be made available to all ICSI couples whenever a gene or chromosomal anomaly has been identified. With most ARTs the average delivery rate per cycle is approximately 15% and the cumulative delivery rate after several cycles is about 50%. (ABSTRACT TRUNCATED)

Endocrinology↗