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Biomedical subjects

Y T Hsu

Publications and source records attributed to Y T Hsu.

At least 19 recordsLinked to original sources

Bax translocation to mitochondria subsequent to a rapid loss of mitochondrial membrane potential.

Bax, a pro-apoptotic member of the Bcl-2 family, is a cytosolic protein that inserts into mitochondrial membranes upon induction of cell death. Using the green fluorescent protein fused to Bax (GFP-Bax) to quantitate mitochondrial binding in living cells we have investigated the cause of Bax association with mitochondria and the time course relative to endogenous and induced changes in mitochondrial membrane potential (DeltaPsi(m)). We have found that staurosporine (STS) induces a loss in DeltaPsi(m) before GFP-Bax translocation can be measured. The onset of the DeltaPsi(m) loss is followed by a rapid and complete collapse of DeltaPsi(m) which is followed by Bax association with mitochondria. The mitochondria uncoupler FCCP, in the presence of the F(1)-F(0) ATPase inhibitor oligomycin, can trigger Bax translocation to mitochondria suggesting that when ATP levels are maintained a collapse of DeltaPsi(m) induces Bax translocation. Neither FCCP nor oligomycin alone alters Bax location. Bax association with mitochondria is also triggered by inhibitors of the electron transport chain, antimycin and rotenone, compounds that collapse DeltaPsi(m) without inducing rapid ATP hydrolysis that typically occurs with uncouplers such as FCCP. Taken together, our results suggest that alterations in mitochondrial energization associated with apoptosis can initiate Bax docking to mitochondria.

Adenosine Triphosphatases↗

The presence of three isoflavonoid compounds in Psoralea corylifolia.

The optimization of a high-performance liquid chromatographic method to determine three isoflavonoids (daidzein, genistein, and biochanin A) in the fruit of Psoralea corylifolia is developed and validated. Dried psoralea fruit powder is extracted with aqueous methanol followed by the hydrolysis of the analytes' conjugated glycosides with hydrochloric acid. The HPLC assay is performed on a reverse-phase C18 column with gradient elution using acetonitrile and 10% acetic acid as the mobile phase at a flow rate of 0.8 mL/min. Flavone is used as the internal standard and the substances are detected at 260 nm. Calibrations are linear (correlation coefficient > or = 0.995) for all three analytes. The limits of detection are 0.01 microg/mL for daidzein and genistein and 0.1 microg/mL for biochanin A. The overall intra- and interassay precision range from 2.5% to 4.9% and from 0.5% to 4.7%, respectively. The method proved to be sensitive, specific, accurate, and precise for the determination of daidzein, genistein, and biochanin A in Psoralea corylifolia.

Calibration↗

The differential inhibitory effects of genistein on the growth of cervical cancer cells in vitro.

The biological effect of genistein on cervical cancer was studied on two cervical cancer cell lines with different cellular characteristics. Here we report that genistein exhibits inhibitory effects on the growth of HeLa and ME-180 cells. The IC50 was 35 microM and 60 microM for HeLa and ME-180 cells, respectively. ME-180 cells showed obvious G2/M arrest with genistein treatment while most of the HeLa cells were accumulated in S phase. The underlying molecular mechanism was further elucidated by apoptosis analysis and expression levels of cell cycle regulatory proteins. Treatment of the cell lines with genistein also resulted in suppression of invasion through a surrogate membrane in a dose-dependent manner, particularly the HeLa cells. While the underlying mechanism needs to be further studied, the higher suppressive effect on invasion of HeLa cells, an adenocarcinoma cell line, are noteworthy. This in vitro observation may have clinical implication to improve the treatment of cervical adenocarcinoma.

Adenocarcinoma↗

Mitochondria in Ca2+ signaling and apoptosis.

Cellular Ca2+ signals are crucial in the control of most physiological processes, cell injury and programmed cell death; mitochondria play a pivotal role in the regulation of such cytosolic Ca2+ ([Ca2+]c) signals. Mitochondria are endowed with multiple Ca2+ transport mechanisms by which they take up and release Ca2+ across their inner membrane. These transport processes function to regulate local and global [Ca2+]c, thereby regulating a number of Ca2+-sensitive cellular mechanisms. The permeability transition pore (PTP) forms the major Ca2+ efflux pathway from mitochondria. In addition, Ca2+ efflux from the mitochondrial matrix occurs by the reversal of the uniporter and through the inner membrane Na+/Ca2+ exchanger. During cellular Ca2+ overload, mitochondria take up [Ca2+]c, which, in turn, induces opening of PTP, disruption of mitochondrial membrane potential (delta(psi)m) and cell death. In apoptosis signaling, collapse of delta(psi)m and cytochrome c release from mitochondria occur followed by activation of caspases, DNA fragmentation, and cell death. Translocation of Bax, an apoptotic signaling protein from the cytosol to the mitochondrial membrane, is another step during this apoptosis-signaling pathway. The role of permeability transition in the context of cell death in relation to Bcl-2 family of proteins is discussed.

Animals↗

Conformation of the Bax C-terminus regulates subcellular location and cell death.

Bax, a pro-apoptotic member of the Bcl-2 family, translocates from the cytosol to the mitochondria during programmed cell death. We report here that both gain-of-function and loss-of-function mutations can be achieved by altering a single amino acid in the Bax hydrophobic C-terminus. The properly mutated C-terminus of Bax can target a non-relevant protein to the mitochondria, showing that specific conformations of this domain alone allow mitochondrial docking. These data along with N-terminus epitope exposure experiments suggest that the C- and the N-termini interact and that upon triggering of apoptosis, Bax changes conformation, exposing these two domains to insert into the mitochondria and regulate the cell death machinery.

Amino Acid Sequence↗

Bax in murine thymus is a soluble monomeric protein that displays differential detergent-induced conformations.

Bcl-2, Bcl-XL, and Bax are members of the Bcl-2 family that play important roles in apoptosis regulation. These proteins are believed to be membrane-bound and to regulate apoptosis through formation of homo- and heterodimers. However, we recently found by subcellular fractionation that whereas Bcl-2 is predominantly a membrane protein as previously reported, Bax and a significant fraction of Bcl-XL are soluble in thymocyte and splenocyte extracts. In addition, we have demonstrated that the ability of Bax to form dimers appears to be a detergent-induced phenomenon that coincides with a detergent-induced conformational change. We have further investigated the tertiary and quaternary states of Bax in the presence of various detergents. Detergents such as Triton X-100 and Triton X-114 readily enable Bax hetero- and homodimerization. However, other detergents such as polydocanol, W-1, octyl glucoside, dodecyl maltoside, Tween 20, and sodium cholate allow varying degrees of Bax hetero- and homodimerization. Detergents such as 3-[(3-cholamidopropyl)dimethylammonio]-1-propanesulfonic acid (Chaps) and Brij 35 allow neither hetero- nor homodimer formation. Immunoprecipitation analysis with the conformation-sensitive antibody uBax 6A7 revealed that whereas Triton X-100 readily exposes the N-terminal Bax epitope (amino acid 13-19), only limited exposure of the epitope occurs in Triton X-114, polydocanol, dodecyl maltoside, and sodium cholate, and no exposure of this epitope was observed in W-1, Chaps, octyl glucoside, Tween 20, and Brij 35. Moreover, we could not detect any proteins associated with the cytosolic form of Bax based on immunopurification of this protein. Sephacryl S-100 gel filtration chromatography analysis of the cytosolic Bax indicated that this protein is monomeric and displays an apparent molecular mass of 25 kDa. Induction of apo-ptosis which causes the insertion of the soluble form of Bax into membranes did not result in appreciable Bax/Bcl-XL, Bax/Bcl-2 or Bax/Bax dimer formation as determined by cross-linking studies. Further analysis of Bax after apoptosis induction by immunoprecipitation in the presence of Chaps also revealed no significant heterodimer formation. In conclusion, Bax displays several distinct states in different detergents that expose defined regions of the protein. In addition, these results suggest that mechanisms other than the simple dimerization among members of the Bcl-2 family may be required for the regulation of apoptosis.

Amino Acid Sequence↗

The role of 2'-5' oligoadenylate-activated ribonuclease L in apoptosis.

Apoptosis of viral infected cells appears to be one defense strategy to limit viral infection. Interferon can also confer viral resistance by the induction of the 2-5A system comprised of 2'-5' oligoadenylate synthetase (OAS), and RNase L. Since rRNA is degraded upon activation of RNase L and during apoptosis and since both of these processes serve antiviral functions, we examined the role RNase L may play in cell death. Inhibition of RNase L activity, by transfection with a dominant negative mutant, blocked staurosporine-induced apoptosis of NIH3T3 cells and SV40-transformed BALB/c cells. In addition, K562 cell lines expressing inactive RNase L were more resistant to apoptosis induced by decreased glutathione levels. Hydrogen peroxide-induced death of NIH3T3 cells did not occur by apoptosis and was not dependent upon active RNAse L. Apoptosis regulatory proteins of the Bcl-2 family did not exhibit altered expression levels in the absence of RNase L activity. RNase L is required for certain pathways of cell death and may help mediate viral-induced apoptosis.

3T3 Cells↗

MR findings of Werdnig-Hoffmann disease in two infants.

We report two infants with Werdnig-Hoffmann disease diagnosed by means of spinal MR imaging, histopathologic examination of muscle biopsy specimens, cloned DNA analysis, electrophysiological examination, and clinical history. The MR findings were consistent with previous histopathologic reports.

Atrophy↗

Movement of Bax from the cytosol to mitochondria during apoptosis.

Bax, a member of the Bcl-2 protein family, accelerates apoptosis by an unknown mechanism. Bax has been recently reported to be an integral membrane protein associated with organelles or bound to organelles by Bcl-2 or a soluble protein found in the cytosol. To explore Bcl-2 family member localization in living cells, the green fluorescent protein (GFP) was fused to the NH2 termini of Bax, Bcl-2, and Bcl-XL. Confocal microscopy performed on living Cos-7 kidney epithelial cells and L929 fibroblasts revealed that GFP-Bcl-2 and GFP-Bcl-XL had a punctate distribution and colocalized with a mitochondrial marker, whereas GFP-Bax was found diffusely throughout the cytosol. Photobleaching analysis confirmed that GFP-Bax is a soluble protein, in contrast to organelle-bound GFP-Bcl-2. The diffuse localization of GFP-Bax did not change with coexpression of high levels of Bcl-2 or Bcl-XL. However, upon induction of apoptosis, GFP-Bax moved intracellularly to a punctate distribution that partially colocalized with mitochondria. Once initiated, this Bax movement was complete within 30 min, before cellular shrinkage or nuclear condensation. Removal of a COOH-terminal hydrophobic domain from GFP-Bax inhibited redistribution during apoptosis and inhibited the death-promoting activity of both Bax and GFP-Bax. These results demonstrate that in cells undergoing apoptosis, an early, dramatic change occurs in the intracellular localization of Bax, and this redistribution of soluble Bax to organelles appears important for Bax to promote cell death.

Animals↗

Nonionic detergents induce dimerization among members of the Bcl-2 family.

Members of the Bcl-2 family (including Bcl-2, Bcl-XL, and Bax) play key roles in the regulation of apoptosis. These proteins are believed to be membrane-associated and have been proposed to regulate apoptosis through both homodimerization and heterodimerization. We have found that whereas Bcl-2 is predominantly membrane-associated as previously reported, significant amounts of Bcl-XL and most of the Bax proteins are not membrane-associated and thus appear in the cytosolic fraction of thymocyte and splenocyte extracts. This finding allows the study of the dimerization properties and conformation of these proteins in the absence of detergent perturbation. For this analysis, we have produced monoclonal antibodies that are specific for known epitopes of Bax, Bcl-2, and Bcl-XL. An antibody to an N-terminal epitope (alpha uBax 6A7) between amino acids 12 and 24 fails to bind the soluble cytosolic form of Bax, indicating that this epitope is normally buried. Nonionic detergents alter the Bax conformation to expose this epitope. In the presence of nonionic detergent, the 6A7 antibody avidly binds the monomeric form of Bax, but not Bax complexed with either Bcl-XL or Bcl-2. In contrast, a monoclonal antibody to an adjacent epitope of Bax (alpha mBax 5B7) within amino acids 3-16 binds the soluble and detergent-altered forms of Bax and also binds the Bax.Bcl-XL or the Bax.Bcl-2 complex. Surprisingly, in the absence of detergent Bax fails to form homodimers or heterodimers with Bcl-XL. These results demonstrate a novel conformational state of members of the Bcl-2 family under a physiological condition that is distinct from the detergent-altered state that forms dimers and is currently believed to regulate apoptosis.

Animals↗

Cytosol-to-membrane redistribution of Bax and Bcl-X(L) during apoptosis.

Bcl-2, Bcl-X(L), and Bax are members of the Bcl-2 family that play key roles in the regulation of apoptosis. These proteins are believed to be membrane bound and their ability to undergo both homodimerization and heterodimerization has been proposed to regulate apoptosis. Herein we report that in murine thymocytes, Bcl-2 is exclusively membrane-bound, whereas Bax is present predominantly in the cytosol and Bcl-X(L) is present in both soluble and membrane-bound forms. Induction of apoptosis in murine thymocytes by dexamethasone or gamma-irradiation shifts the subcellular locations of Bax and Bcl-X(L) from soluble to membrane-bound forms. A similar shift in the localization of Bax from the cytosol to membranes was observed in HL-60 leukemia cells upon induction of apoptosis by staurosporine. Inhibition of apoptosis with cycloheximide inhibits the movement of Bax and Bcl-X(L) in thymocytes from the cytosol into membranes induced by dexamethasone treatment. These movements may represent an important step in the pathway by which members of this family regulate apoptosis.

Animals↗

Interaction of calmodulin with the cyclic GMP-gated channel of rod photoreceptor cells. Modulation of activity, affinity purification, and localization.

The cGMP-gated cation channel of rod photoreceptor cells plays a central role in the phototransduction process by controlling the influx of cations into the rod outer segment in response to changes in cGMP levels. Previous studies have shown that the cGMP-gated channel in native rod outer segment membrane vesicles is modulated by calmodulin in a calcium-dependent manner. In this study we report that the immunoaffinity-purified channel consisting of the 63-kDa alpha-subunit and a 240-kDa protein is also modulated by calmodulin when reconstituted into lipid vesicles. In the absence of calmodulin, the purified channel had an apparent Km of 33 microM and a Hill coefficient of 3.3 for cGMP-dependent efflux of Ca2+ from reconstituted lipid vesicles. In the presence of calmodulin, the Km increased to 44 microM without affecting the Hill coefficient or maximum velocity of ion efflux. Calmodulin modulation of the channel is inhibited by the calmodulin antagonist, mastoparan. In the absence of mastoparan, the half-maximum inhibition of channel activity (IC50) occurred at 1.85 +/- 0.25 nM calmodulin at a cGMP concentration of 12.5 microM; in the presence of mastoparan, the IC50 value increased to 20.3 +/- 3.8 nM calmodulin. Based on the strong, selective interaction of calmodulin with the channel, an efficient, general method has been developed to isolate functionally active cGMP-gated channels from mammalian and amphibian photoreceptor membranes. Calmodulin extraction studies, Western blotting, and channel activity measurements indicate that endogenous rod outer segment calmodulin modulates the activity of the channel through its binding to the 240-kDa protein. From these studies we conclude that the 240-kDa protein of the cGMP-gated channel is a major calmodulin target protein of rod outer segment membranes.

Animals↗

Subunit 2 (or beta) of retinal rod cGMP-gated cation channel is a component of the 240-kDa channel-associated protein and mediates Ca(2+)-calmodulin modulation.

The cGMP-gated cation channel mediating visual transduction in retinal rods was recently found to comprise at least two subunits, 1 and 2 (or alpha and beta). SDS gels of the purified channel show, in addition to a 63-kDa protein band (subunit 1), a 240-kDa protein band that binds Ca(2+)-calmodulin, a modulator of the channel. To examine any connection between subunit 2 and the 240-kDa protein, cGMP-gated channels formed from the expressed cloned subunits in human embryonic kidney (HEK) 293 cells were tested for Ca(2+)-calmodulin effect. Homooligomeric channels formed by subunit 1 alone showed no sensitivity to Ca(2+)-calmodulin, and neither did heterooligomeric channels formed by subunit 1 and the short alternatively spliced form of subunit 2 (2a). By contrast, the cGMP half-activation constant (K1/2) for heterooligomeric channels formed from subunit 1 and the long form of subunit 2 (2b) was increased 1.5- to 2-fold by Ca(2+)-calmodulin, similar to the increase observed for the native channel. In Western blots of rod outer segment membranes, a subunit 2-specific antibody also recognized the 240-kDa protein. Finally, amino acid sequences derived from peptide fragments of the bovine 240-kDa protein showed approximately 80% identity to regions of subunit 2b of the human channel. These results together suggest that subunit 2b of the rod channel is a component of the 240-kDa protein and that it mediates the Ca(2+)-calmodulin modulation of the channel.

Amino Acid Sequence↗

Usefulness of soluble interleukin 2 receptor in differentiating tuberculous and carcinomatous pleural effusions.

OBJECTIVE: To evaluate the usefulness of soluble interleukin 2 receptor (sIL-2R) in differentiating tuberculous and carcinomatous pleural effusions. METHODS: Levels of sIL-2R were measured simultaneously in plasma and pleural fluid in 111 patients with pleural effusions of unknown causes. RESULTS: The causes of pleural effusions were tuberculosis in 42 cases, carcinoma in 41 cases, pneumonia in 18 cases, and heart failure in 10 cases. In all groups of patients, sIL-2R levels were significantly higher in pleural fluid than in plasma. Plasma and effusion levels of sIL-2R were highest in the patients with tuberculosis, followed by those with carcinoma, pneumonia, and heart failure. Levels were significantly higher in the tuberculous group than in the carcinomatous group. To differentiate tuberculous from carcinomatous effusions, the highest plasma and effusion sIL-2R values obtained from the carcinomatous group were chosen as cutoff points (test specificity, 100%). The sensitivities of plasma and effusion sIL-2R levels in differentiating tuberculous and carcinomatous pleural effusions were 50% (21 of 42 samples) and 81% (34 of 42 samples), respectively. CONCLUSIONS: Although increased plasma and pleural fluid levels of sIL-2R should not be viewed as a diagnostic test specific for tuberculous pleural effusion, sIL-2R level appears to be clinically useful as a biochemical marker to differentiate tuberculous and carcinomatous pleural effusions.

Adult↗

Structural and functional properties of rhodopsin from rod outer segment disk and plasma membrane.

The structural and functional properties of bovine rhodopsin from rod outer segment disk and plasma membranes were compared by high performance liquid chromatography (HPLC), mass spectrometric analyses, and in vitro rhodopsin phosphorylation assays. Disk and plasma membranes separated by a ricin gold-dextran affinity perturbation method were treated with trypsin or cyanogen bromide, and the N-terminal and C-terminal rhodopsin peptides were isolated by immunoaffinity chromatography using antirhodopsin monoclonal antibodies coupled to Sepharose. Reverse phase HPLC chromatograms of the C-terminal and N-terminal peptides from disk and plasma membrane rhodopsin were found to be similar. Mass spectrometric, PicoTag, and hexose analyses of the tryptic 1-16 N-terminal peptides further indicated that the post-translational glycosylation of plasma membrane rhodopsin is identical to that of disk membrane rhodopsin. HPLC analysis of soluble peptides obtained from cyanogen bromide and tryptic digestion of immunoaffinity purified rhodopsin also indicated that no significant differences exist between disk and plasma membrane rhodopsin. Light-induced phosphorylation of rhodopsin in disk and plasma membranes were also compared using in vitro phosphorylation assays. Plasma membrane rhodopsin was found to undergo light-dependent, rhodopsin kinase catalyzed phosphorylation to the same extent as disk membrane rhodopsin. These results indicate that the bulk rhodopsin in rod outer segment plasma membranes appears to be identical to rhodopsin in disk membranes in regard to primary structure, post-translational glycosylation and light-dependent phosphorylation. On this basis, it is unlikely that the sorting of rhodopsin between disk and plasma membranes occurs by a mechanism based on differences in structural properties of rhodopsin.

Animals↗

Modulation of the cGMP-gated channel of rod photoreceptor cells by calmodulin.

Photobleaching of rhodopsin in rod photoreceptors activates the visual cascade system leading to a decrease in cyclic GMP and the closure of cGMP-gated channels in the rod outer segment plasma membrane. Calcium plays an important role in the recovery of the rod outer segment to its dark state by regulating the resynthesis of cGMP by guanylate cyclase. Here we report that calmodulin, a Ca(2+)-binding protein present in the rod outer segment, increases the apparent Michaelis constant of the channel for cGMP. This results in a decrease in the rate of cation influx into the rod outer segment by two- to sixfold at low cGMP concentrations and has the effect of increasing the sensitivity of the channel to small changes in cGMP levels during phototransduction. Biochemical studies indicate that calcium-calmodulin binds to a protein of M(r) 240K which is tightly associated with the channel. On the basis of these studies, Ca2+ is suggested to play a central role in photorecovery and light adaptation, not only by regulating guanylate cyclase, possibly through recoverin, but also by modulating the cGMP-gated channel through calmodulin interaction with the 240K protein.

Animals↗

[Radiology of diffuse panbronchiolitis: experience in VGH-Taipei].

Eleven cases of diffuse panbronchiolitis (DPB) were reported. According to plain chest film (10 cases) and high-resolution computed tomography (HRCT) (11 cases) findings, all were grouped as x-ray type B or CT type II advanced stage. Among them, 4 cases were grouped between CT type II-III; 3, CT type III-IV. All 11 patients had history of chronic paranasal sinusitis (CPS). Three patients had HLA typing. 1 had positive HLA Bw54; 3, HLA Cw1. We suggested patient with CPS, positive HLA Bw54 and Cw1 typing and clinically suspected DPB, radiological study including HRCT should be done.

Adult↗