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Biomedical subjects

W L Liu

Publications and source records attributed to W L Liu.

At least 19 recordsLinked to original sources

Biological significance of a small highly conserved region in the N terminus of the p53 tumour suppressor protein.

The p53 tumour suppressor protein plays a central role in maintaining genomic integrity in eukaryotic cells. The most significant biological function of p53 is to act as a sequence-specific DNA-binding transcription factor, which can induce the expression of a variety of target genes in response to diverse stress stimuli. The p53 protein contains six highly conserved regions, one of which, termed Box I, is located in the N-terminal transactivation domain (amino acid residues 13 and 26). The second half of the Box I region is crucial for the interaction with the basal transcription machinery and is thus required for p53's activity as a transcription factor. The same region also binds to Mdm2. Since p53 is targeted by Mdm2 for ubiquitin-mediated proteasome-dependent degradation, this region is also essential for the regulation of p53's stability in response to stress signals. Although the first half of Box I is highly conserved, its biological function is not clearly defined. The aim of this study was to characterise this conserved region and investigate its role in the biological functions of p53. We have generated short deletions and point mutations within this region and analysed their effect on p53 function and regulation. Biochemical analyses demonstrate that deletion of residues 13 to 16 significantly increases both the transcriptional transactivation and G(2) arrest-inducing activities of murine p53. Residues 13 to 16 appear to function as a regulatory element in p53, modulating p53-dependent transcriptional transactivation and cell-cycle arrest, possibly by affecting the structural stability of the core domain of the protein. In support of this, the deletion was found to induce second-site reversion of the Val135 temperature-sensitive mutant of murine p53.

Amino Acid Sequence↗

Assay of serum arylesterase activity by fitting to the reaction curve with an integrated rate equation.

BACKGROUND: Conventional enzyme activities make use of the initial reaction rate at high substrate concentrations. Because this is not always practical, alternative enzyme assays have been sought. METHODS: Reaction curve fitting with an integrated rate equation was investigated to assay serum arylesterase (ArE) activity using phenyl acetate (PA) and p-nitrophenol acetate (PNPA) as substrates. At a much lower initial concentration of substrate (S(0)), the simplified integrated rate equation for the ArE reaction was ln(S(0)/S(i))=(V(m)/K(m)+K(d))t(i). Treating S(0) as a parameter, the enzyme activity as V(m)/K(m) was estimated through nonlinear least square fitting to reaction curve, and the multiplication of V(m)/K(m) by K(m) produced V(m). Spontaneous hydrolysis of the substrate with a rate constant, K(d), served as the background for the estimation of V(m)/K(m). RESULTS: Substrate concentration at 8% of K(m) was well suited for the estimation of V(m)/K(m). With either substrate, the V(m)/K(m) showed a close relation to the percentage of substrate consumed, and was not affected by common systematic errors. With either substrate, the between-run precision for V(m)/K(m) was 6% (n>7), V(m)/K(m) was proportional to the amount of ArE and closely correlated with its initial rate. The upper limit of linearity by this integrated method was much higher than the initial rate method, while the detection limit was comparable. By using either V(m)/K(m) or the initial rate, there was negligible interference with ArE activity assay from triglycerides, bilirubin, and hemoglobin. CONCLUSIONS: These results indicate the feasibility of the integrated method for routine assay of serum enzyme activity.

Algorithms↗

Anisotropic thermal conductivity of Ge quantum-dot and symmetrically strained Si/Ge superlattices.

We report the first experimental results on the temperature dependent in-plane and cross-plane thermal conductivities of a symmetrically strained Si/Ge superlattice and a Ge quantum-dot superlattice measured by the two-wire 3 omega method. The measured thermal conductivity values are highly anisotropic and are significantly reduced compared to the bulk thermal conductivity of the structures. The results can be explained by using heat transport models based on the Boltzmann transport equation with partially diffusive scattering of the phonons at the superlattice interfaces.

Anisotropy↗

Opposing effect of p38 CCDPK and p44/42 CCDPK signaling on TNF-alpha-induced apoptosis in bovine aortic endothelial cells.

AIM: To investigate the pro-apoptotic role of tumor necrosis factor alpha (TNF-alpha) in cultured bovine aortic endothelial cells (BAEC) and its underlied apoptotic signaling pathways. METHODS: BAEC were cultured and passaged in Dulbecco's modified Eagle's medium (DMEM). Morphologic changes and quantification of apoptotic cells were determined under fluorescence microscope after TNF-alpha treated BAEC for 24 h with Hoechst 33258 staining. Cell viability was determined with MTT method. DNA fragmentation was visualized by agarose gel electrophoresis. The expression of phospho-p38 and phospho-p44/42 Ca2+-calmodulin dependent protein kinase (CCDPK, formerly called MAPK) was measured by Western blotting. RESULTS: TNF-alpha elicited typical apoptotic morphologic changes (chromatic condensation, nucleus fragmentation) and DNA fragmentation. At 1000-5000 kU/L, incubation with TNF-alpha for 24 h induced BAEC apoptosis and both of phospho-p38 and phospho-p44/42 CCDPK expression in a concentration-dependent manner. Interestingly, TNF-alpha-stimulated activation of p44/42 CCDPK was completely blocked, TNF-alpha-induced apoptosis was markedly increased by preincubation with U0126, a specific p44/42 CCDPK inhibitor. However, SB203580, a specific p38 CCDPK inhibitor, completely blocked TNF-alpha-stimulated activation of p38 CCDPK, and enhanced the expression of phospho-p44/42 CCDPK induced by TNF-alpha, substantially inhibited the pro-apoptotic effect of TNF-alpha. CONCLUSION: TNF-alpha simultaneously activates p38 CCDPK and p44/42 CCDPK, and these two CCDPK signaling pathways appeared to play opposing roles in TNF-alpha-induced apoptosis in BAEC.

Animals↗

Identification of desmoglein 1 as autoantigen in a patient with intraepidermal neutrophilic IgA dermatosis type of IgA pemphigus.

In a 51-year-old female patient with intraepidermal neutrophilic IgA dermatosis (IEN) type of IgA pemphigus, circulating IgA, but not IgG, autoantibodies were detected to bind to the cell surface of the whole epidermis, being much stronger in the upper epidermis. In the patient's skin a heavy intraepidermal IgA staining was observed throughout the whole epidermis, accompanied by a weak IgG and a more prominent C3 staining. IgA from the patient's serum showed no reactivity either with epidermal proteins by immunoblot analysis, or with COS 7 cells transiently transfected with mammalian cell expression constructs containing full length human Dsc1, Dsc2 and Dsc3. Our patient's IgA specifically reacted with conformational epitopes of human desmoglein (Dsg) 1 but not Dsg 3, when studied in a previously established, here for IgA antibody detection modified enzyme-linked immunoabsorbent assay (ELISA) of baculovirus expression system. The immunoreactivity against keratinocyte cell surface was completely removed from the serum of the patient by pre-incubation with recombinant Dsg1 baculoprotein. This finding indicates that the sera possess only IgA antibodies against the extracellular domain of Dsg1 baculoprotein, but no antibodies against components of keratinocyte cell surface other than Dsg1. This is the first case of IgA pemphigus where Dsg1 has been identified as the autoantigen.

Autoantigens↗

High glucose enhances H2O2-induced apoptosis in bovine aortic endothelial cells.

AIM: To investigate the effect of high glucose on hydroperoxide (H2O2)-induced apoptosis in cultured bovine aortic endothelial cells (BAEC). METHODS: BAEC were cultured and passaged in normal glucose (5.5 mmol.L-1, NG) and high glucose (25 mmol.L-1, HG). Morphologic changes and quantification of apoptotic cells were determined under fluorescence microscope after H2O2-treated BAEC for 24 h with Hoechst 33258 staining. DNA fragmentation was visualized by agarose gel electrophoresis. The expression of phospho-p38 Ca(2+)-calmodulin dependent protein kinase (CCDPK, formerly called MAPK) was measured by Western blotting. RESULTS: H2O2 elicited typical apoptotic morphologic changes (chromatic condensation, nucleus fragmentation). At 100 -300 mumol.L-1, both NG- and HG-BAEC incubated with H2O2 for 24 h increased cell apoptosis and phospho-p38 CCDPK expression in a concentration-dependent manner. In HG-BAEC, H2O2 induced DNA fragmentation at a lower concentration than that in NG-BAEC, and the apoptotic cell count in HG-BAEC was also higher than that of NG-BAEC (P < 0.05). Similarly, the expression of phospho-p38 CCDPK induced by H2O2 was up-regulated in HG-BAEC (P < 0.05). CONCLUSION: High glucose enhances H2O2-induced apoptosis in BAEC, which is related to high expression of phospho-p38 CCDPK.

Animals↗

High glucose impairs endothelium-dependent relaxation in rabbit aorta.

AIM: To study the effects of high glucose on endothelium-dependent relaxation (EDR) and the action of L-arginine, superoxide dismutase (SOD), or glucose re-normalization in aorta. METHODS: Measurement of EDR of the isolated rabbit thoracic aortic rings. RESULTS: Elevated glucose (25 mmol.L-1) caused profound impairment of acetylcholine (ACh)-induced relaxation, EC50: 1.6 mumol.L-1 (95% CL: 7.9 nmol.L(-1)-6.3 mumol.L-1) vs normal glucose (5.5 mmol.L-1) EC50: 0.08 mumol.L-1 (95% CL: 0.02 mumol.L(-1)-0.3 mumol.L-1) (P < 0.01), which not reversed followed by a further 24 h incubation in normal glucose M199, EC50: 2.0 mumol.L-1 (95% CL: 0.2 pmol.L(-1)-12.5 mumol.L-1). However, aortic rings incubated with mannitol (19.5 mmol.L-1) relaxed to ACh normally. L-arginine 1 mmol.L-1 or SOD 150 U.L-1 restored ACh relaxation in elevated glucose to normal, EC50: 0.16 mumol.L-1 (95% CL: 0.04 mumol.L(-1)-0.8 mumol.L-1) and 0.16 mumol.L-1 (95% CL: 0.03-0.63 mumol.L-1). The relaxation in response to sodium nitroprusside was not different between rings exposed to normal or elevated glucose. CONCLUSION: Hyperglycemia impaired EDR, which was not reversible by glucose re-normalization, increased free radical production and altered L-arginine metabolism were involved in this endothelium dysfunction.

Acetylcholine↗

High glucose inhibits expression of inducible and constitutive nitric oxide synthase in bovine aortic endothelial cells.

AIM: To investigate the effects of high glucose on the expression of nitric-oxide synthase (NOS) in cultured bovine aortic endothelial cells (BAEC). METHODS: BAEC were cultured and passaged in normal glucose (NG) 5.5 mmol.L-1, high glucose (HG) 25 mmol.L-1, or high osmolarity (glucose 5.5 mmol.L-1 + mannitol 19.5 mmol.L-1, Mann-BAEC), lipopolysaccharides (LPS)-induced nitric oxide (NO) production was assessed by Griess reaction. The expression of inducible NOS (iNOS) and constitutive NOS (ecNOS) was determined by Western blot. RESULTS: At a concentration range from 0.5 to 2 mg.L-1, LPS stimulated NO production in NG-BAEC in a concentration-dependent manner. NO production reached the peak level at LPS 1 mg.L-1. HG inhibited NO production, when compared with NG- and Mann-BAEC (nitrite mumol.L-1: HG-BAEC 43 +/- 8, vs NG-BAEC 71 +/- 11, Mann-BAEC 70 +/- 9, n = 4 experiments, P < 0.01). iNOS expression was decreased by 39.9% and 39.3%, and ecNOS by 28% and 24% respectively in HG-BAEC, when compared with NG- or Mann-BAEC. However, no marked difference was observed in the LPS-induced NO production and the expression of iNOS and ecNOS between NG- and Mann-BAEC. CONCLUSIONS: Inhibition of BAEC NO production by HG was mainly due to a decreased expression of NOS protein.

Animals↗

Effects of p38 and p42/p44 CCDPK signaling on H2O2-induced apoptosis in bovine aortic endothelial cells.

AIM: To investigate the effects of p38 and p42/p44 Ca(2+)-calmodulin dependent protein kinases (CCDPK) signaling on hydroperoxide (H2O2)-induced apoptosis in cultured bovine aortic endothelial cells (BAEC). METHODS: Morphologic changes and quantification of apoptotic cells were determined under fluorescence microscope after a 24-h treatment of BAEC by H2O2. Cell viability was determined with MTT method. DNA fragmentation was visualized by agarose gel electrophoresis. The expression of phospho-p38 and phospho-p42/p44 CCDPK was measured by Western blotting. RESULTS: H2O2 elicited typical apoptotic morphologic changes (chromatic condensation, nucleus fragmentation) and DNA fragmentation. At 100-500 mumol.L-1, incubation of BAEC with H2O2 for 24 h also induced phospho-p38 and phospho-p42/p44 CCDPK expression in a concentration-dependent manner. Interestingly, H2O2-induced apoptosis was markedly increased by preincubation with U0126, a specific p42/p44 CCDPK inhibitor. However, SB203580, a specific p38 CCDPK inhibitor, enhanced the expression of phospho-p42/p44 CCDPK induced by H2O2, but had no effect on BAEC survival. CONCLUSION: p42/p44 CCDPK signaling appears to play protective roles in H2O2-induced apoptosis in BAEC, whereas p38 CCDPK is not the main signaling pathway mediating H2O2-induced cellular apoptosis.

Animals↗

Hydrolysis of extracellular adenine nucleotides by cultured bovine endocardial endothelial cells.

AIM: To characterize the ATP diphosphohydrolase (apyrase) of bovine endocardial endothelial cells, and to compare ecto-adeninenucleotidase activity between bovine endocardial and aortic endothelial cells (BEEC and BAEC). METHODS: The nucleotide was analyzed by reversed phase HPLC and apyrase activity was assayed by inorganic phosphate release. RESULTS: Apyrase inhibitors, both NaN3 10 mmol.L-1 and NaF 20 mmol.L-1, inhibited BEEC apyrase activity by 51% and 38%, respectively. The inhibitor for Na+/K(+)-ATPase, ouabain, did not affect the enzyme activity. Edetic acid 5 mmol.L-1 completely inhibited the enzyme activity. H2O2 0.5 mmol.L-1 downregulated BEEC apyrase activity in a time-dependent manner. The apyrases activities in BAEC were higher than those in BEEC, while the ecto-AMPase activity in BAEC was much weaker than that in BEEC. CONCLUSION: BEEC have NaN3- and NaF-sensitive, ouabain-insensitive apyrase activity. BEEC had high ecto-AMPase activities, and low apyrases activities as compared with BAEC.

Animals↗

Target selectivity of MAPK phosphorothioate antisense ODN on p42/p44, p38 MAPK, and JNK protein expression and its inhibitory effect on VSMC DNA synthesis.

AIM: To analyze the target selective and sequence-specific inhibitory effect of mitogen-activated protein kinase (MAPK) phosphorothioate antisense oligodeoxynucleotides (ODN) on p42/p44, p38 MAPK, c-jun NH2-terminal protein kinases (JNK) protein expression, and DNA synthesis in vascular smooth muscle cell (VSMC). METHODS: Using a phosphorothioate-protected 17-mer antisense MAPK ODN directed against the initiation of translation sites of the p42/p44 MAPK isoforms by liposomal transfection to deplete cultured rat, rabbit, and fetal calf VSMC MAP kinases. The 17-mer sense and random sequence MAPK ODN were used as controls. After liposomal transfection, cells were exposed to 20% serum for 24 h, and then harvested in lysis buffer. P42/p44, p38 MAPK, and p46/p58 JNK protein expression were measured by Western blot. DNA synthesis was measured by [3H]thymidine incorporation. RESULTS: Treatment with MAPK antisense ODN (0.1-0.8 mumol.L-1) for 48 h reduced phosphored p42/p44 MAPK protein expression but without effect on p38 MAPK and JNK expression, and inhibited cultured rat, rabbit, and fetal calf VSMC [3H]thymidine incorporation stimulated by 20% serum in a concentration-dependent manner. CONCLUSION: The MAPK antisense ODN target-selectively and sequence-specifically reduces the p42/p44 MAPK protein expression and concentration-dependently inhibits proliferation of rat, rabbit and fetal calf VSMC.

Animals↗

High glucose enhances mitogenic response to endothelin-1 in rabbit vascular smooth muscle cells.

AIM: To examine the effects of high glucose on the mitogenic response of rabbit aortic vascular smooth muscle cells (VSMC) to endothelin-1 (ET-1). METHODS: VSMC were cultured in normal glucose (5.5 mmol.L-1), high glucose (25 mmol.L-1) or high osmolality (glucose 5.5 mmol.L-1, plus mannitol 19.5 mmol.L-1). DNA synthesis was measured by [3H]thymidine incorporation. The expression of phospho-p44/42 MAPK was determined by Western blot. RESULTS: At a concentration range from 10(-12) to 10(-8) mol.L-1, ET-1 stimulated [3H]thymidine incorporation and phospho-p44/42 MAPK expression in VSMC in a concentration-dependent manner. From 10(-11) to 10(-8) mol.L-1, the mitogenic effect of ET-1 was higher in VSMC cultured in high glucose at equivalent concentration than cells cultured in normal glucose or high osmolality (P < 0.05 or P < 0.01), but no marked difference was observed in the growth response between cells cultured under the latter two conditions. Similarly, ET-1 increased expression of phospho-p44/42 MAPK by 60%-65% in VSMC cultured in high glucose, compared with cells in normal glucose or high osmolality. CONCLUSION: VSMC cultured in high glucose exhibited increased mitogenic response to ET-1, which seemed to be related to the enhanced expression of phospho-p44/42 MAPK.

Animals↗

Characteristics of apyrase (EC 3.6.1.5) on cultured bovine endocardial endothelial cells.

Apyrase activities in some tissues and cells, such as peripheral vascular endothelial cells, have been reported, but these in endocardium endothelial cells have not been reported. The present study was to characterise the properties of bovine endocardium endothelial cells (BEEC)-associated apyrase. Apyrase activity was assayed by inorganic phosphate release, which could be inhibited concentration-dependently by NaN3, an apyrase inhibitor. NaF (20 mmol/L), another inhibitor of apyrase, also markedly inhibited the activity. EDTA or EGTA (1 mmol/L) could also inhibit the activity completely. However, the inhibitor for Na+/K(+)-ATPase, ouabain (3 mmol/L) did not affect the enzyme activity. BEEC apyrase activity was dependent on divalent cations (Ca2+ or Mg2+) and pH value.

Animals↗

Oxidized low-density lipoproteins induce apoptosis in vascular smooth muscle cells.

AIM: To examine whether oxidized low density lipoproteins (ox-LDL) could induce apoptosis in rabbit aortic smooth muscle cells (VSMC). METHODS: Low density lipoproteins (n-LDL) were isolated from healthy human plasma by gradient ultracentrifugation and oxidized by CuSO4 10 mumol.L-1. VSMC were exposed to ox-LDL, n-LDL, or phosphate-buffer solution (PBS) as control. Morphological changes were observed under fluorescene microscope after Hoechst 33258 staining. Extracted DNA was electrophoresized on agarose gel. RESULTS: Incubation of VSMC with ox-LDL 300 mg.L-1, not n-LDL, for 24 h induced morphological apoptosis changes (chromatin condensation, nucleus fragmentation) and DNA fragmentation, which was furthered with the incubation time up to 48 h or at a concentration of 400 mg.L-1. Dextran sulfate, a scavenger receptor blocker and butylated hydroxytoluene (BHT), an antioxidant, exhibited no effect on DNA fragmentation. Lysophosphatidylcholine (LPC) at a concentration up to 125 mumol.L-1 (equivalent to ox-LDL 300 mg.L-1) did not elicit DNA fragmentation. CONCLUSION: Ox-LDL induced apoptosis in VSMC without involving oxygen free radicals and LPC.

Animals↗

Design of a synthetic Mdm2-binding mini protein that activates the p53 response in vivo.

BACKGROUND: The transcriptional activation function of the p53 tumour suppressor protein is induced by DNA damage and results in growth arrest and/or apoptotic responses. A key component of this response is the dramatic rise in p53 protein concentration resulting from an increase in the protein's stability. Very recently, it has been suggested that interaction with the Mdm2 protein may target p53 for rapid degradation. We have designed a gene encoding a small protein that binds tightly to the p53-binding pocket on the Mdm2 protein. We have constructed the gene by cloning a phage display optimised Mdm2-binding peptide into the active-site loop of thioredoxin. RESULTS: When introduced into cells containing low levels of wild-type p53, this protein causes a striking accumulation of the endogenous p53 protein, activation of a p53-responsive reporter gene, and cell cycle arrest mimicking the effects seen in these cells after exposure to UV or ionising radiation. Microinjection of a monoclonal antibody to the p53-binding site on Mdm2 achieves a similar effect, establishing its specificity. CONCLUSIONS: These results demonstrate that the p53 response is constitutively regulated in normal cells by Mdm2 and that disruption of the interaction alone is sufficient to stabilise the p53 protein and activate the p53 response. Our mini protein approach provides a powerful new method to activate p53 without causing DNA damage. More broadly, it establishes a powerful general method for determining the biological consequences of the specific disruption of protein-protein interactions in cells.

Amino Acid Sequence↗

Hypoxia induces cyclooxygenase-2 via the NF-kappaB p65 transcription factor in human vascular endothelial cells.

The inducible cyclooxygenase, COX-2, has been associated with vascular inflammation and cellular proliferation. We have discovered that hypoxia increases expression of the COX-2 gene in human vascular endothelial cells in culture independent of other stimuli. Western analysis of human umbilical vein endothelial cells (HUVEC) revealed a greater than 4-fold induction of protein by hypoxia (1% O2). The steady-state level of COX-2 mRNA was correspondingly elevated by both Northern blot and reverse transcriptase-polymerase chain reaction analysis. Using electrophoretic mobility shift assays with antibody supershifting, we also found that hypoxia causes increased binding of NF-kappaB p65 (Rel A) to the one out of the two NF-kappaB consensus elements in the COX-2 promoter which is closest to the transcription start site of the COX-2 gene. Transfection of an immortalized human microvascular endothelial cell line (HMEC-1) with mutation reporter gene constructs and HUVEC with both mutation and deletion reporter gene constructs suggested that transcription of the COX-2 gene was enhanced by hypoxia. In transcription factor decoy experiments, hypoxic HUVEC were exposed in culture to 20 microM of the same NF-kappaB element found to bind NF-kappaB protein. The wild type transcription factor decoy prevented hypoxic induction of COX-2, presumably by binding with cytoplasmic p65; however, mutated or scrambled oligonucleotides did not prevent the increase in COX-2 protein expression by hypoxia. Thus, the intracellular signaling mechanism that leads to induction of COX-2 by hypoxia includes binding of p65 to the relatively 3' NF-kappaB consensus element in the COX-2 upstream promoter region in human vascular endothelial cells.

Base Sequence↗

Non-conventional role of lysosomal acid phosphatase in olfactory receptor axons: co-localization with growth-associated phosphoprotein-43.

Olfactory receptor neurons undergo a continuous turnover in adult mammals. It is largely unknown how their axons invade the olfactory bulb and induce synaptic re-organization in glomeruli. Here, the cytochemical localization of lysosomal acid phosphatase has been studied in olfactory bulbs of adult rats and mice. The enzyme has been identified by specific substrate, inhibitors and absence in lysosomal acid phosphatase-knockout mice. Lysosomal acid phosphatase is located in primary and secondary lysosomes, which are unevenly distributed in the olfactory nerve layer and among olfactory glomeruli. In consecutive sections of glomeruli, the intensity of lysosomal acid phosphatase immunoreactivity co-varied with that of growth-associated phosphoprotein. Electron microscopically, differential lysosomal acid phosphatase staining in glomeruli corresponded to different proportions of labelled and unlabelled axons. Quantification revealed that lysosomal acid phosphatase labelling was strongest in non-synaptic profiles of terminal axons, while it was weak in or even missing from most synaptic profiles. Hence, growing olfactory axons apparently carry more lysosomal acid phosphatase than those which have established synaptic contacts. Following olfactory deafferentation both lysosomal acid phosphatase activity and growth-associated phosphoprotein-43 are lost from glomeruli, suggesting that both proteins are expressed in olfactory sensory axons during growth, while lysosomal acid phosphatase is apparently not a marker of anterograde terminal degeneration.

Acid Phosphatase↗