PubMed Health⌕ Search

Biomedical subjects

S Marlin

Publications and source records attributed to S Marlin.

16 recordsLinked to original sources

Loss-of-function and residual channel activity of connexin26 mutations associated with non-syndromic deafness.

Connexins are the protein subunits of gap junction channels that allow a direct signaling pathway between networks of cells. The specific role of connexin channels in the homeostasis of different organs has been validated by the association of mutations in several human connexins with a variety of genetic diseases. Several connexins are present in the mammalian cochlea and at least four of them have been proposed as genes causing sensorineural hearing loss. We have started our functional analysis by selecting nine mutations in Cx26 that are associated with non-syndromic recessive deafness (DFNB1). We have observed that both human Cx26 wild-type (HCx26wt) and the F83L polymorphism, found in unaffected controls, generated electrical conductance between paired Xenopus oocytes, which was several orders of magnitude greater than that measured in water-injected controls. In contrast, most recessive Cx26 mutations (identified in DFNB1 patients) resulted in a simple loss of channel activity. In addition, the V37I mutation, originally identified as a polymorphism in heterozygous unaffected individuals, was devoid of function and thus may be pathologically significant. Unexpectedly, we have found that the recessive mutation V84L retained functional activity in both paired Xenopus oocytes and transfected HeLa cells. Furthermore, both the magnitude of macroscopic junctional conductance and its voltage-gating properties were indistinguishable from those of HCx26wt. The identification of functional differences of disease causing mutations may lead to define which permeation or gating properties of Cx26 are necessary for normal auditory function in humans and will be instrumental in identifying the molecular steps leading to DFNB1.

Animals↗

Connexin 26 gene mutations in congenitally deaf children: pitfalls for genetic counseling.

OBJECTIVE: To evaluate difficulties encountered in genetic counseling in deaf children carrying connexin 26 gene (CX26 or GJB2) mutations. DESIGN: Prospective study. SETTING: Outpatients, tertiary referral center. PATIENTS: Ninety-six unrelated deaf children in whom CX26 mutations had been detected consecutively. Children were recruited to a center for genetic counseling for deaf children, and all had congenital deafness, sporadic or familial. RESULTS: In 63 children, deafness was clearly a DFNB1 form with autosomal recessive inheritance: 47 of the 63 were homozygous for the most frequent mutation, the deletion of G at position 35 (35delG); 16 of 63 carried on both alleles of CX26 frameshift or stop mutations, or missense mutations affecting a critical region of the gene. In 33 of 96 children, genetic counseling was difficult: 21 of 33 had a single mutation detected, 11 of 33 had new missense mutations or mutations whose pathogenicity remains debated in the literature, and 1 of 33 had a genotype with both a recessive mutation (35delG) and a mutation acting as a dominant mutation. CONCLUSIONS: Interpretation of results for the molecular diagnosis of mutations in the connexin 26 gene is difficult in almost one third of cases. Close collaboration between geneticists familiar with deafness and otolaryngologists is essential to provide a high standard of genetic advice.

Adult↗

[Hereditary sensorineural deafness].

Deafness is the most common sensory defect. The investigation of the cause of deafness is critical for genetic counselling, and sometimes for appropriate management of associated pathologies. About two thirds of cases of congenital deafness are genetic forms, and the proportion is probably similar concerning the forms of deafness that appears during childhood. Some of the genetic forms are syndromic and the associated signs are sometimes inapparent or may appear during childhood. Consequently, a systematic search for the most frequent syndromes is necessary in each deaf individual. In the majority of genetic cases, deafness is the sole defect (non-syndromic deafness) and the major mode of transmission is autosomal recessive. The DFNB1 form of deafness, due to connexin 26 gene mutations, underlies half of the cases of non syndromic congenital deafness cases. The hearing loss has a prelingual onset, and it is most frequently severe or profound. There is no associated pathologies or radiological anomalies of the inner ear, and the vestibular tests are normal. The possibility of offering molecular diagnosis of connexin 26 gene defects is profoundly modifying daily medical practice in the investigation of the cause of deafness.

Connexin 26↗

Phase III comparative study of vinorelbine combined with doxorubicin versus doxorubicin alone in disseminated metastatic/recurrent breast cancer: National Cancer Institute of Canada Clinical Trials Group Study MA8.

PURPOSE: This phase III study was performed to determine the superiority of doxorubicin (DOX) and vinorelbine (VNB) (arm 1) versus DOX alone (arm 2) in metastatic breast cancer (MBC) for overall survival (OS), time to treatment failure (TTF), toxicity, and quality of life (QOL). PATIENTS AND METHODS: Three hundred three patients were randomized to DOX 50 mg/m(2) intravenously (IV) on day 1 and VNB 25 mg/m(2) IV on days 1 and 8 (arm 1) or DOX 70 mg/m(2) IV on day 1 (arm 2). Both regimens were given every 3 weeks until a cumulative DOX dose of 450 mg/m(2). After 16 of the first 65 randomized patients experienced febrile neutropenia (FN), the doses were reduced to DOX 40 mg/m(2) on day 1 and VNB 20 mg/m(2) on days 1 and 8 versus DOX 60 mg/m(2) on day 1. Eligible patients were vinca alkaloid and anthracycline naive. Chemotherapy was first-line or second-line for MBC. RESULTS: Three patients were ineligible. Thus, 300 patients were assessable for toxicity and to determine time to disease progression (TTP), TTF, and OS. Two hundred eighty-nine patients were assessable for response, and 99 responders were assessable for response duration (RD). The response rates, QOL, and median RD, TTP, and TTF were not significantly different between the arms. Median OS was 13.8 months for arm 1 versus 14.4 months for arm 2 (P =.4). Grade 3 or 4 granulocytopenia was equivalent in both arms but more grade 3/4 neurotoxicity, mild venous toxicity, and FN were seen on arm 1. CONCLUSION: The survival with DOX and VNB is not superior to DOX alone in MBC.

Adult↗

Clinical features of the prevalent form of childhood deafness, DFNB1, due to a connexin-26 gene defect: implications for genetic counselling.

BACKGROUND: DFNB1, the locus of an autosomal recessive form of deafness due to mutations in the connexin-26 gene (CX26 or GJB2) is one of the most frequent hereditary defects in human beings. To date, no clinical characterisation of the DFNB1 inner-ear defects has been reported, which precludes the provision of prognostic information and genetic counselling. METHODS: We enrolled, in a prospective study, 140 children from 104 families affected by sensorineural deafness with various degrees of hearing loss. The children either belonged to a family affected by autosomal recessive deafness (DFNB family) or represented sporadic cases. We searched for mutations in the 5' non-coding exon and in the coding region of CX26. Audiometric and radiological features were investigated and compared in deaf children with and without CX26 mutations. FINDINGS: CX26 mutations were present in 43 (49%) of the 88 families with cases of prelingual deafness versus none of the 16 families with postlingual forms of deafness (p<0.01). The inner-ear defects of 54 prelingually deaf children with biallelic CX26 mutations were compared with the defects in 57 prelingually deaf children without CX26 mutations. DFNB1 deafness varied from mild to profound, associated with sloping or flat audiometric curves and a radiologically normal inner ear. Hearing loss was not progressive in 11 of 16 cases tested, and variations in the severity of deafness between siblings were common. INTERPRETATION: The characteristic audiometric and radiological features of DFNB1 should be the reference used to guide the investigation, by CX26 molecular diagnostic tests, of deaf children with a compatible phenotype. Prognostic information can now be given to families: the hearing loss in DFNB1 deafness is non-progressive in most cases, at least up to young adulthood. An important element for genetic counselling is that the severity of hearing loss due to DFNB1 is extremely variable and cannot be predicted, even within families.

Case-Control Studies↗

KCNQ4, a novel potassium channel expressed in sensory outer hair cells, is mutated in dominant deafness.

Potassium channels regulate electrical signaling and the ionic composition of biological fluids. Mutations in the three known genes of the KCNQ branch of the K+ channel gene family underlie inherited cardiac arrhythmias (in some cases associated with deafness) and neonatal epilepsy. We have now cloned KCNQ4, a novel member of this branch. It maps to the DFNA2 locus for a form of nonsyndromic dominant deafness. In the cochlea, it is expressed in sensory outer hair cells. A mutation in this gene in a DFNA2 pedigree changes a residue in the KCNQ4 pore region. It abolishes the potassium currents of wild-type KCNQ4 on which it exerts a strong dominant-negative effect. Whereas mutations in KCNQ1 cause deafness by affecting endolymph secretion, the mechanism leading to KCNQ4-related hearing loss is intrinsic to outer hair cells.

Amino Acid Sequence↗

Townes-Brocks syndrome: detection of a SALL1 mutation hot spot and evidence for a position effect in one patient.

Townes-Brocks syndrome (TBS) is an autosomal dominant developmental disorder characterized by anal and thumb malformations and by ear anomalies that can affect the three compartments and usually lead to hearing loss. The gene underlying TBS, SALL1, is a human homolog of the Drosophila spalt gene which encodes a transcription factor. A search for SALL1 mutations undertaken in 11 unrelated affected individuals (five familial and six sporadic cases) led to the detection of mutations in nine of them. One nonsense and six different novel frameshift mutations, all located in the second exon, were identified. Together with the previously reported mutations [Kohlhase et al., 1999], they establish that TBS results from haploinsufficiency. The finding of de novo mutations in the sporadic cases is consistent with the proposed complete penetrance of the disease. Moreover, the occurrence of the same 826C>T transition in a CG dimer, in three sporadic cases from the present series and three sporadic cases from the other series [Kohlhase et al., 1999] (i.e., six of the eight mutations identified in sporadic cases), reveals the existence of a mutation hotspot. Six different SALL1 polymorphisms were identified in the course of the present study, three of which are clustered in a particular region of the gene that encodes a stretch of serine residues. Finally, the chromosome 16 breakpoint of a t(5;16)(p15.3;q12.1) translocation carried by a TBS-affected individual was mapped at least 180 kb telomeric to SALL1, thus indicating that a position effect underlies the disease in this individual.

Abnormalities, Multiple↗

A particular case of deafness-oligodontia syndrome.

Two previous case reports described two sibs affected with both sensorineural hearing loss and oligodontia. Here, we report a similar syndrome in a male patient with an, as yet, undescribed vestibular aqueduct enlargement on tomodensitometry. The analysis of the parent's audiograms is consistent with the suggested autosomal recessive mode of inheritance of this disorder.

Anodontia↗

Two cases of Townes-Brocks syndrome with previously undescribed anomalies.

Townes-Brocks syndrome is characterized by the association of anorectal, radial ray and outer ear malformations and deafness. We describe two patients affected with several typical clinical signs of Townes-Brocks syndrome in addition to growth and puberty delays and vertebral anomalies not previously reported.

Abnormalities, Multiple↗

[Etiological diagnosis of sensorineural deafness in children: a year-long review of genetic counseling for deaf people].

From February 1996 to January 1997, 74 patients from 53 sibships underwent genetic counselling for sensorineural deafness at the Pasteur Hospital, Paris, France. Genetic counselling was based on the etiological diagnosis of the hearing impairment, by an audiological and non-audiological examination program. At the first examination, 31 families presented with a familial deafness and 22 families with apparently one affected individual. However, familial audiological examinations revealed familial deafness in 5 of these 22 families. Consequently, a total of 36 families had hereditary hearing impairment and the etiological groups showed the following distribution: non-syndromic deafness (14 families), syndromic deafness (12 families), probable syndromic deafness (5 families), and incomplete assessment (5 families). Out of the remaining 17 families in which affected individuals were sporadic cases, the etiological groups were as follows: acquired deafness (2 families), probable syndromic deafness (5 families), unknown cause (5 families), and incomplete assessment (5 families). Etiological assessment is discussed, with reference to the cost-effectiveness of this examination program. In light of this preliminary report, we present a model of assessment for the etiological diagnosis of sensorineural deafness in children and young adults.

Adolescent↗

Prelingual deafness: high prevalence of a 30delG mutation in the connexin 26 gene.

Prelingual non-syndromic (isolated) deafness is the most frequent hereditary sensory defect. In >80% of the cases, the mode of transmission is autosomal recessive. To date, 14 loci have been identified for the recessive forms (DFNB loci). For two of them, DFNB1 and DFNB2, the genes responsible have been characterized; they encode connexin 26 and myosin VIIA, respectively. In order to evaluate the extent to which the connexin 26 gene (Cx26) contributes to prelingual deafness, we searched for mutations in this gene in 65 affected Caucasian families originating from various countries, mainly tunisia, France, New Zealand and the UK. Six of these families are consanguineous, and deafness was shown to be linked to the DFNB1 locus, 10 are small non consanguineous families in which the segregation of the trait has been found to be compatible with the involvement of DFNB1, and in the remaining 49 families no linkage analysis has been performed. A total of 62 mutant alleles in 39 families were identified. Therefore, mutations in Cx26 represent a major cause of recessively inherited prelingual deafness since according to the present results they would underlie approximately half of the cases. In addition, one specific mutation, 30delG, accounts for the majority (approximately 70%) of the Cx26 mutant alleles. It is therefore one of the most frequent disease mutations so far identified. Several lines of evidence indicate that the high prevalence of the 30delG mutation arises from a mutation hot spot rather than from a founder effect. Genetic counseling for prelingual deafness has been so far considerably impaired by the difficulty in distinguishing genetic and non genetic deafness in families presenting with a single deaf child. Based on the results presented here, the development of a simple molecular test could be designed which should be of considerable help.

Australia↗

Obesity: a new feature of WAGR (del 11p) syndrome.

A 6-year-old girl with del(11)(p14p12) is reported. This girl has the multiple congenital anomalies that defines the WAGR syndrome (aniridia, external genital hypoplasia and severe mental retardation). She has, in addition, very severe obesity (+10 SD) which is not a feature usually described with WAGR association.

Aniridia↗

Position-specific adaptation in complex cell receptive fields of the cat striate cortex.

1. Responses of complex cells in cat striate cortex were studied with flashed light slit stimuli. The responses to slits flashed in different positions in the receptive field were assessed quantitatively before and after periods of prolonged stimulation of one small region of the receptive field. This type of prolonged stimulation resulted in reduced responsivity over a limited zone within the complex cell receptive field. 2. The adaptation-induced responsivity decrement was generally observed in both the ON and OFF response profiles but could also be restricted to one or the other. In general, the magnitude of the response decrements was greatest in the ON response profiles. The adaptation-induced response decrement did not necessarily spread throughout the receptive field but was restricted to a small region surrounding the adapted receptive field position (RFP). Adaptation spread equally widely across the ON and OFF response profiles despite the smaller adaptation effects in the OFF profile. 3. The adaptation effects from repeated stimulation at a single RFP did not spread symmetrically across the receptive field, and a given cell's preferred direction of motion indicated the direction of the asymmetric spread of the adaptation. RFPs that would be stimulated by a light slit originating at the point of adaptation and moving in the preferred direction (preferred side) showed greater adaptation-induced response decrements than did RFPs that would be stimulated by a light slit moving in the opposite direction from the point of adaptation (nonpreferred side). There was significant enhancement of responses at some RFPs on the non-preferred side of the point of adaptation. This asymmetric spread of adaptation could be caused by adaptation of inhibitory connections that contribute to complex cell direction selectivity. 4. The asymmetry of adaptation was significantly different for the ON and OFF response profiles. The asymmetric spread of adaptation for the ON response profile was similar to that observed previously in simple cells with greater decrements in the preferred direction side of the point of adaptation. However, the OFF response profiles showed less directional asymmetry in the spread of adaptation and showed greater decrements at RFPs in the nonpreferred direction side of the point of adaptation. 5. The similarity between the spread of adaptation in simple and complex cells suggests that the adaptation in these cells is occurring through a common mechanism. The directional asymmetry of the spread of adaptation is likely due to a local postsynaptic mechanism of adaptation rather than presynaptic transmitter depletion.

Adaptation, Physiological↗

The time course of direction-selective adaptation in simple and complex cells in cat striate cortex.

1. Responses of single cortical neurons in area 17 of anesthetized cats were recorded in response to prolonged stimulation with a patch of drifting square-wave grating. 2. During adaptation in the preferred direction, all neurons showed some reduction in response to motion in the stimulated direction and most showed some reduction in the opposite, nonstimulated direction. 3. For complex cells, the time course of response decrement in both the stimulated and nonstimulated directions was exponential, with an average time constant of 5 s. Response recovery was also exponential but significantly slower, with time constants of 8 and 13 s in the stimulated and nonstimulated directions, respectively. 4. For simple cells the dynamics of the adaptation effect depended on the direction of testing. In the nonstimulated direction the time course of the change in sensitivity was similar to that of complex cells. In the stimulated direction during both the adaptation and recovery periods, simple cells showed an initial rapid exponential change on the order of a few seconds that was followed by a more gradual exponential change. 5. During prolonged stimulation in the nonpreferred direction, there was less overall change in sensitivity. For some neurons the change in sensitivity during adaptation and recovery was exponential, with a short time constant for both simple and complex cells and for stimulated and nonstimulated directions. Other neurons showed no change in sensitivity in either direction and a few neurons showed facilitation during the adaptation period. 6. There appears to be a rapid general or nonspecific process, which may be related to contrast gain control, underlying motion adaptation in striate cortical neurons. An additional slow, direction-selective process is revealed when simple but not complex cells are stimulated in the preferred direction. We suggest that this latter type of adaptation is a key feature underlying the perceptual motion aftereffect.

Animals↗