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Biomedical subjects

A E MacKenzie

Publications and source records attributed to A E MacKenzie.

At least 19 recordsLinked to original sources

Tudor reign.

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Cyclic AMP Response Element-Binding Protein↗

Neuronal apoptosis inhibitory protein expression after traumatic brain injury in the mouse.

Apoptosis of brain cells is triggered by traumatic brain injury (TBI) and is blocked by caspase inhibitors. The neuronal apoptosis inhibitor protein (NAIP), which has been shown to inhibit apoptosis by both caspase-dependant and caspase-independent mechanisms, is neuroprotective in rat models of cerebral ischemia and axotomy. In order to gain a better appreciation of CNS apoptosis following head injury in general and the possible involvement of NAIP specifically, we have configured a mouse model of TBI. In addition to demonstrating apoptosis, the spatiotemporal expression or levels of a number of proteins with apoptosis modulating effects have been determined. Apoptosis of neurons and oligodendrocytes following TBI was observed in brain sections which were triple-stained with in situ end labeling, bisbenzimide and immunofluorescent stain for neuron specific nuclear protein and myelin-associated glycoprotein, respectively. Further evidence for apoptosis following TBI in this model was obtained in brain samples using ligation-mediated PCR amplification of DNA fragments and gel electrophoresis. The temporal profile of apoptosis was similar to the temporal profile of microglial activation determined by CD11b staining and TNFa expression induced by TBI. NAIP staining in sections of cerebral cortex and subcortical white matter increased at 6 h and decreased towards control levels at 24 h post-TBI. Temporal changes in the expression of NAIP were also observed using Western blot analysis of brain samples removed from injured cortex and sub-cortical white matter. At the time that NAIP expression decreased markedly (24 h post-TBI), procaspase-3 levels also decreased, PARP cleavage increased, and the highest levels of apoptosis were observed. These findings have implications in our understanding of traumatically induced programmed cell death and may be useful in the configuration of therapies for this common injury state.

Animals↗

The hippocampal neurons of neuronal apoptosis inhibitory protein 1 (NAIP1)-deleted mice display increased vulnerability to kainic acid-induced injury.

The neuronal apoptosis inhibitory protein (NAIP) is a member of a novel family of inhibitor of apoptosis (IAP) proteins. The IAP genes are highly conserved from baculovirus to metazoans and suppress apoptosis induced by a variety of triggers both in vitro and in vivo. Here we describe the generation and characterization of mice with the targeted deletion of NAIP1. We demonstrate that the NAIP1-deleted mice develop normally. However, the survival of pyramidal neurons in the hippocampus after kainic acid-induced limbic seizures is greatly reduced in the NAIP1 knock-out animals. Thus, although NAIP1 is not necessary for normal development of murine central nervous system, the endogenous NAIP1 is required for neuronal survival in pathological conditions.

Animals↗

Needs of families with a relative in a critical care unit in Hong Kong.

The aim of this study is to explore family members' perceptions of their immediate needs following admission of a relative to a critical care unit in Hong Kong. A convenience sample of 30 family members was drawn from those available during the first 96 hours of hospitalization of their relative. Self-reported questionnaires, consisting of a demographic data sheet, a modified Chinese version of the 45-item Critical Care Family Needs Inventory (CCFNI) and semistructured interviews, are the instruments used to examine family members' perceptions of need importance and to ascertain whether or not these needs are met. Doctors and nurses are identified as the most suitable people to meet most immediate family needs. Conclusions are drawn as to the best focus of nursing interventions in order to provide quality care to patients and families.

Adult↗

IAP family proteins delay motoneuron cell death in vivo.

Neuronal apoptosis inhibitory protein (NAIP), and human inhibitors of apoptosis 1 and 2 (HIAP1 and HIAP2) are three members of the mammalian family of antiapoptosis proteins called 'inhibitors of apoptosis' (IAP). These molecules can prevent apoptosis in vitro and the over-expression of NAIP can decrease ischemic damage in the hippocampus. The goal of our experiments was to determine whether administration of NAIP, HIAP1 and HAIP2 could rescue motoneurons following axotomy of a peripheral nerve. In young rats, an adenoviral gene transfer technique was used to deliver and express these proteins in motoneurons; a fluorescent tracer was simultaneously added as a means for quantitatively assessing the rescue of fluorescently labelled motoneurons in serial sections of the lumbar spinal cord. Control experiments using adenoviral vectors (adv) expressing the lacZ gene showed that 14% of the sciatic motoneuron pool could be transfected indicating the existence of a subpopulation of spinal motoneurons susceptible to this class of viral vectors. The administration of an adv-NAIP, adv-HIAP1 and adv-HIAP2 rescued 30-40% of motoneurons at one week after sciatic axotomy. The efficiency of these proteins was similar to that of two neurotrophic factors, ciliary neurotrophic factor and brain-derived neurotrophic factor, administrated by the same viral technique. The effect of the IAP proteins on motoneuron survival decreased with time but was still present after 4 weeks postaxotomy; the duration of the response was dependent upon the viral titre. These experiments demonstrate that IAP family proteins can prevent motoneuron cell death in vivo and may offer a new therapeutic approach for motoneuron diseases.

Adenoviridae↗

Neuronal apoptosis inhibitory protein (NAIP)-like immunoreactivity in brains of adult patients with Down syndrome.

In Down syndrome (DS), enhanced apoptosis (programmed cell death) may play a role in the pathogenesis of characteristic early mental retardation and precocious neurodegeneration of Alzheimer-type. The human IAP (inhibitor of apoptosis proteins) genes (NAIP, c-IAP-2/HIAP-1, c-IAP-1/Hiap-2, XIAP, survivin) are an evolutionary conserved family of proteins which prevent cell death across species, implying that they act at a central, highly conserved point in the cell death cascade. Evidence for downregulation of NAIP-mRNA in fetal DS (23rd week of gestation), as found by subtractive hybridization technique challenged studies at the protein level in adult DS brain specimen. NAIP-like immunoreactivity was determined in four different regions of cerebral cortex and cerebellum in 9 adult DS patients with Alzheimer-like neuropathologic lesions, 9 Alzheimer disease (AD) patients as compared to 9 controls. For the first time, NAIP-IR could be demonstrated in different cortical regions of the human brain. Compared to control subjects, western blotting demonstrated significantly decreased levels in parietal and occipital cortex in DS and in frontal and occipital cortex in AD. While the mode of NAIP action is unknown, inhibition of certain caspases has already been demonstrated for other IAP-family members (c-IAP1, c-IAP2 and XIAP). Although decreased NAIP-IR of certain brain regions in DS and AD awaits further confirmation, the results suggest that alterations of apoptosis regulatory (inhibitory) proteins may be another feature of neurodegeneration in DS and AD.

Adult↗

Chinese elderly patients' perceptions of their rehabilitation needs following a stroke.

Stroke is the third leading cause of death and disability among Chinese elderly patients in Hong Kong and yet the rehabilitation needs of these patients are rarely explored. The aim of this study was to identify the rehabilitation needs of Chinese elderly patients following a stroke. The study adopted an ethnographic approach, information being gathered by the researcher through interviews with 15 key informants selected by purposive sampling. The perceptions of patients as to their own needs were sought at three stages of recovery - in the acute and rehabilitation settings and at 1 month following discharge. Ethical approval was gained from the Chinese University Faculty of Medicine ethical committee and access agreed by the hospital authorities. Verbal approval was gained from the patients before each interview, following confirmation of the voluntary nature of participation and assurance of confidentiality and anonymity. The researcher's role was also clearly stated. Analysis of the interview data produced five categories of patient need at the three stages of recovery, namely informational, physical, psychological, social and spiritual. The most frequently stated, but largely unmet, need in all settings was the need for information, particularly information about the reasons for stroke and about the activities that promote recovery. In the acute and rehabilitation settings patients' responses indicated a need to be respected as individuals, to be addressed by name and to be provided with privacy. Although the Barthel Index administered during interviews charted recovery at different rates, nurses did not always make links between the level of functional ability and the help needed with physical tasks. They also failed to recognize the relationship between physical and psychological needs and the equal importance of both in recovery from stroke. As Chinese elderly patients tend to take a passive role in seeking help and information, nurses play a significant role in the identification of individual rehabilitation needs. Implications for nursing practice are discussed.

Activities of Daily Living↗

Adenovirus-mediated gene transfer of inhibitors of apoptosis protein delays apoptosis in cerebellar granule neurons.

The inhibitor of apoptosis (IAP) family of antiapoptotic genes, originally discovered in baculovirus, exists in animals ranging from insects to humans. Here, we investigated the ability of IAPs to suppress cell death in both a neuronal model of apoptosis and excitotoxicity. Cerebellar granule neurons undergo apoptosis when switched from 25 to 5 mM potassium, and excitotoxic cell death in response to glutamate. We examined the endogenous expression of four members of the IAP family, X chromosome-linked IAP (XIAP), rat IAP1 (RIAP1), RIAP2, and neuronal apoptosis inhibitory protein (NAIP), by semiquantitative reverse PCR and immunoblot analysis in cultured cerebellar granule neurons. Cerebellar granule neurons express significant levels of RIAP2 mRNA and protein, but expression of RIAP1, NAIP, and XIAP was not detected. RIAP2 mRNA content and protein levels did not change when cells were switched from 25 to 5 mM potassium. To determine whether ectopic expression of IAP influenced neuronal survival after potassium withdrawal or glutamate exposure, we used recombinant adenoviral vectors to target XIAP, human IAP1 (HIAP1), HIAP2, and NAIP into cerebellar granule neurons. We demonstrate that forced expression of IAPs efficiently blocked potassium withdrawal-induced N-acetyl-Asp-Glu-Val-Asp-specific caspase activity and reduced DNA fragmentation. However, neurons were only protected from apoptosis up to 24 h after potassium withdrawal, but not at later time points, suggesting that IAPs delay but do not block apoptosis in cerebellar granule neurons. In contrast, treatment with 100 microM or 1 mM glutamate did not induce caspase activity and adenoviral-mediated expression of IAPs had no influence on subsequent excitotoxic cell death.

Adenoviridae↗

Spinal muscular atrophy: molecular pathophysiology.

Spinal muscular atrophy is an autosomal recessive disease characterized by motor neurone loss, muscle atrophy and weakness. Deletion or mutation of the SMN1 gene reduces intracellular survival motor neurone protein levels causes spinal muscular atrophy, most likely by interfering with spliceosome assembly. A range of clinical severity and corresponding survival motor neurone levels is seen because of the presence of copies of the transcriptionally inefficient SMN2 gene and possibly other modifying genes. The delineation of SMN1 as the gene that causes spinal muscular atrophy and the identification of genes that modify spinal muscular atrophy raise the prospect of gene therapy or in-vivo gene activation treatment for this frequently fatal disorder.

Autoantigens↗

A small interstitial deletion in the GPC3 gene causes Simpson-Golabi-Behmel syndrome in a Dutch-Canadian family.

Deletions in the heparan sulphate proteoglycan encoding glypican 3 (GPC3) gene have recently been documented in several Simpson-Golabi-Behmel syndrome (SGBS) families. However, no precisely defined SGBS mutation has been published. We report here a 13 base pair deletion which causes a frameshift and premature termination of the GPC3 gene in the Dutch-Canadian SGBS family in whom the trait was originally mapped. Our analysis shows that a discrete GPC3 disabling mutation is sufficient to cause SGBS. Furthermore, our finding of a GPC3 normal daughter of an SGBS carrier with skeletal abnormalities and Wilms tumour raises the possibility of a trans effect from the maternal carrier in SGBS kindreds.

Bone and Bones↗

The inhibitors of apoptosis (IAPs) and their emerging role in cancer.

The inhibitor of apoptosis protein family has been characterized over the past 5 years, initially in baculovirus and more recently in metazoans. The IAPs are a widely expressed gene family of apoptotic inhibitors from both phylogenic and physiologic points of view. The diversity of triggers against which the IAPs suppress apoptosis is greater than that observed for any other family of apoptotic inhibitors including the bcl-2 family. The central mechanisms of IAP apoptotic suppression appear to be through direct caspase and pro-caspase inhibition (primarily caspase 3 and 7) and modulation of and by the transcription factor NF-kappaB. Although evidence for a direct oncogenic role for the IAPs has yet to be delineated, a number of lines of evidence point towards this class of protein playing a role in oncogenesis. The strongest evidence for IAP involvement in cancer is seen in the IAP called survivin. Although not observed in adult differentiated tissue, survivin is present in most transformed cell lines and cancers tested to date. Survivin has been shown to inhibit caspase directly and apoptosis in general, moreover survivin protein levels correlate inversely with 5 year survival rates in colorectal cancer. Recent data has also implicated survivin in cell cycle control. The second line of evidence for IAP involvement in cancer comes from their emerging role as mediators and regulators of the anti-apoptotic activity of v-Rel and NF-kappaB transcription factor families. The IAPs have been shown to be induced by NF-kappaB or v-Rel in multiple cell lines and conversely, HIAP1 and HIAP2 have been shown to activate NF-kappaB possibly forming a positive feed-back loop. Overall a picture consistent with an IAP role in tumour progression rather than tumour initiation is emerging making the IAPs an attractive therapeutic target.

Amino Acid Sequence↗

Sequence of a 131-kb region of 5q13.1 containing the spinal muscular atrophy candidate genes SMN and NAIP.

The spinal muscular atrophies (SMA), which are characterized by motor neuron loss and progressive paralysis, are among the most common autosomal recessive disorders. The SMA region of chromosome 5q13.1 is distinguished by variable amplification of genomic sequence incorporating a number of genes and pseudogenes. Recently, two SMA candidate genes mapping to this area were identified: survival motor neuron (SMN) and neuronal apoptosis inhibitory protein (NAIP). The telomeric copy of SMN (SMNtel) is deleted in over 95% of cases of SMA, with NAIP deletions primarily seen in type I SMA. We present here 131 kb of genomic sequence from 5q13.1 incorporating both NAIP and SMNtel in addition to revisions of the original NAIP cDNA sequence. The Alu-rich NAIP-SMNtel interval contains the microsatellite polymorphisms that are deleted in as many as 80% of type I SMA chromosomes, focusing attention on this region in the pathogenesis of type I SMA.

Amino Acid Sequence↗

Reply to Burghes.

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Cyclic AMP Response Element-Binding Protein↗

Genomic organization and primary characterization of miap-3: the murine homologue of human X-linked IAP.

IAPs (inhibitor of apoptosis proteins) are a recently identified family of proteins that function in the cell death pathway to inhibit programmed cell death. We have earlier reported cloning of four human IAPs: NAIP, hiap-1, hiap-2, and xiap. To facilitate studies of these genes, we have undertaken the cloning of their murine homologues. We report here the cloning, mapping, and preliminary characterization (including cellular and tissue distribution profile) of the murine homologue of the human X-linked IAP (xiap). The mouse gene called miap-3 (for murine IAP-3; GenBank Accession No. nuc 1 U88990) has a coding region of 1.5 kb that encodes a protein of 55 kDa and has 87 and 94% homology with its human homologue at DNA and amino acid levels, respectively. Northern blot analysis reveals an 8-kb miap-3 transcript in all tissues examined to date. miap-3 is composed of six exons and five introns spanning approximately 20 kb. miap-3 has been assigned to the A3-A5 region of mouse chromosome X by FISH analysis.

Amino Acid Sequence↗

Clinical application of the molecular diagnosis of spinal muscular atrophy: deletions of neuronal apoptosis inhibitor protein and survival motor neuron genes.

The molecular genetic diagnosis of spinal muscular atrophy (SMA) has recently been complicated by the identification of two candidate genes, which are often deleted in affected individuals but are also occasionally deleted in apparently unaffected carriers. We present a compilation of genotypes, from our laboratory and recent reports, for the survival motor neuron (SMN) and neuronal apoptosis inhibitor protein (NAIP) genes. Bayesian analyses were used to generate probabilities for SMA when deletions are present or absent in SMN. We found that when the SMN(T) exon 7 is deleted, the probability of SMA can reach greater than 98% in some populations, and when SMN(T) is present, the probability of SMA is approximately 17 times less than the prior population risk. Deletion of NAIP exon 5, as well as SMN(T) exon 7, is associated with a 5-fold increased risk of type I SMA. Case studies are used to illustrate differing disease risks for pre- and postnatal testing, depending on the presence of information about clinical status or molecular results. These analyses demonstrate that deletion screening of candidate genes can be a powerful tool in the diagnosis of SMA.

Cyclic AMP Response Element-Binding Protein↗

Simpson-Golabi-Behmel syndrome: genotype/phenotype analysis of 18 affected males from 7 unrelated families.

Simpson-Golabi-Behmel syndrome (SGBS) is an X-linked overgrowth disorder recently shown to be caused by mutations in the heparan sulfate proteoglycan GPC3 [Pilia et al., Nat Genet; 12:241-247 1996]. We have used Southern blot analysis and polymerase chain reaction amplification of intra-exonic sequences to identify four new GPC3 mutations and further characterize three previously reported SGBS mutations. De novo GPC3 mutations were identified in 2 families. In general, the mutations were unique deletions ranging from less than 0.1 kb to more than 300 kb in length with no evidence of a mutational hot spot discerned. The lack of correlation between the phenotype of 18 affected males from these 7 families and the location and size of the GPC3 gene mutations suggest that SGBS is caused by a nonfunctional GPC3 protein.

Abnormalities, Multiple↗

Convergent myotonic dystrophy (DM) haplotypes: potential inconsistencies in human disease gene localization.

Myotonic dystrophy (DM) is an autosomal dominant neuromuscular disease which has been shown to be caused by an unstable trinucleotide repeat located on chromosome 19q. We have conducted extensive haplotype analysis on 105 DM chromosomes using twelve 19q13.2 loci identifying 18 RFLPs, spanning a physical distance of 1.3 Mb containing the DM gene. Three major haplotypes (H1, H2 and H3) comprising 46.7% of the DM chromosomes in our population, were observed. With the exception of H1 and H2 derivatives (H4, H5 and H6), the remainder of the DM chromosomes analyzed were found to have unique haplotypes. Haplotypes H2 and H3 observed exclusively on DM chromosomes of French-Canadian origin contain identical 500-kb core regions. The low frequency of this core haplotype in normal chromosomes (0.8%) is consistent with a mapping of the DM gene within this region. However, the DM mutation is found 160 kb distal to the point of divergence between the two haplotypes. In contrast, the 450-kb region shared by haplotypes H1 and H2 contains the DM mutation. Further analysis of the DM region using a polymorphic microsatellite (GJ-VSSM2; D19S207) located 15 kb distal to the DM mutation revealed strong allelic association of one of the (CA)n repeat alleles to DM; allele 5 was observed on 88.2% of DM chromosomes and 6% of normal chromosomes. The fact that the (CA)n allele 5 was found on all 56 DM chromosomes containing the three major haplotypes indicates that DM chromosomes in our population, including the two French-Canadian haplotypes which have a common region outside the DM gene, are probably derived from the same mutational event.(ABSTRACT TRUNCATED AT 250 WORDS)

Alleles↗

Mapping of Simpson-Golabi-Behmel syndrome to Xq25-q27.

Simpson-Golabi-Behmel syndrome (SGBS) is an X-linked gigantism syndrome characterized primarily by a coarse facies and somatic overgrowth which we have observed to be associated with an increased risk for embryonal tumors. Genetic linkage analysis for two SGBS kindreds in which X linked dominant inheritance was observed has been conducted for the X chromosome. The closest linkage to SGBS was observed for the Xq26 locus HPRT (Z max = 7.45, theta max = 0.00). SGBS-Xq marker recombinations map the disease locus to the DXS425-DXS1123 interval on Xq25-q27. This maps the disease locus to a region known to contain a previously characterized chromosomal translocation breakpoint found in a young girl with somatic overgrowth. This observation may have implications for the cloning of the SGBS gene.

Base Sequence↗