PubMed Health⌕ Search

Biomedical subjects

J Lavergne

Publications and source records attributed to J Lavergne.

At least 19 recordsLinked to original sources

Site-directed mutations at D1-His198 and D2-His197 of photosystem II in Synechocystis PCC 6803: sites of primary charge separation and cation and triplet stabilization.

Site-directed mutations were introduced to replace D1-His198 and D2-His197 of the D1 and D2 polypeptides, respectively, of the photosystem II (PSII) reaction center of Synechocystis PCC 6803. These residues coordinate chlorophylls P(A) and P(B) which are homologous to the special pair Bchlorophylls of the bacterial reaction centers that are coordinated respectively by histidines L-173 and M-200 (202). P(A) and P(B) together serve as the primary electron donor, P, in purple bacterial reaction centers. In PS II, the site-directed mutations at D1 His198 affect the P(+)--P-absorbance difference spectrum. The bleaching maximum in the Soret region (in WT at 433 nm) is blue-shifted by as much as 3 nm. In the D1 His198Gln mutant, a similar displacement to the blue is observed for the bleaching maximum in the Q(y) region (672.5 nm in WT at 80 K), whereas features attributed to a band shift centered at 681 nm are not altered. In the Y(Z*)--Y(Z)-difference spectrum, the band shift of a reaction center chlorophyll centered in WT at 433--434 nm is shifted by 2--3 nm to the blue in the D1-His198Gln mutant. The D1-His198Gln mutation has little effect on the optical difference spectrum, (3)P--(1)P, of the reaction center triplet formed by P(+)Pheo(-) charge recombination (bleaching at 681--684 nm), measured at 5--80 K, but becomes visible as a pronounced shoulder at 669 nm at temperatures > or =150 K. Measurements of the kinetics of oxidized donor--Q(A)(-) charge recombination and of the reduction of P(+) by redox active tyrosine, Y(Z), indicate that the reduction potential of the redox couple P(+)/P can be appreciably modulated both positively and negatively by ligand replacement at D1-198 but somewhat less so at D2-197. On the basis of these observations and others in the literature, we propose that the monomeric accessory chlorophyll, B(A), is a long-wavelength trap located at 684 nm at 5 K. B(A)* initiates primary charge separation at low temperature, a function that is increasingly shared with P(A)* in an activated process as the temperature rises. Charge separation from B(A)* would be potentially very fast and form P(A)(+)B(A)(-) and/or B(A)(+)Pheo(-) as observed in bacterial reaction centers upon direct excitation of B(A) (van Brederode, M. E., et al. (1999) Proc. Natl. Acad Sci. 96, 2054--2059). The cation, generated upon primary charge separation in PSII, is stabilized at all temperatures primarily on P(A), the absorbance spectrum of which is displaced to the blue by the mutations. In WT, the cation is proposed to be shared to a minor extent (approximately 20%) with P(B), the contribution of which can be modulated up or down by mutation. The band shift at 681 nm, observed in the P(+)-P difference spectrum, is attributed to an electrochromic effect of P(A)(+) on neighboring B(A). Because of its low-energy singlet and therefore triplet state, the reaction center triplet state is stabilized on B(A) at < or =80 K but can be shared with P(A) at >80 K in a thermally activated process.

Bacteriochlorophylls↗

Absorption changes induced by the binding of triazines to the QB pocket in reaction centers of Rhodobacter capsulatus.

Inhibitors which block electron transfer from the primary (Q(A)) to the secondary (Q(B)) quinone of the bacterial reaction center are competing with the pool ubiquinones for binding at the Q(B) pocket. Due to the much greater stability of the semiquinone state Q(B)(-) compared with fully oxidized or reduced quinone, a displacement of the inhibitors takes place after one flash from state Q(A)(-)I to state Q(A)Q(B)(-). This process can be monitored from near-IR absorption changes which reflect local absorption shifts specific to Q(A)(-) and Q(B)(-). An anomalous behavior was observed when using triazines in chromatophores of R. capsulatus: the IR absorption change reflecting the formation of Q(B)(-) after one flash was absent. A normal transient decay of this signal was, however, triggered by a second flash, followed by a rapid return to the baseline. We show that this phenomenon is due to an absorption change induced by inhibitor binding (thus present in the dark baseline), with a spectrum close to that of Q(B)(-), so that the Q(B)(-) changes are canceled out during the inhibitor displacement process. On the second flash, one monitors the destruction of the semiquinone, leading transiently to the Q(A)Q(B) state, followed by inhibitor rebinding. This allows a direct measurement of the binding kinetics. This behavior was observed both in chromatophores and in isolated reaction centers from R. capsulatus, but not in R. sphaeroides.

Atrazine↗

Equilibrium and kinetic parameters for the binding of inhibitors to the QB pocket in bacterial chromatophores: dependence on the state of QA.

The equilibrium and kinetic parameters for the binding of various inhibitors to the Q(B) pocket of the bacterial reaction center were investigated in chromatophores from Rhodobacter capsulatus and Rhodobacter sphaeroides. By monitoring the near-IR absorption changes specific to Q(A)(-) and Q(B)(-), we measured the fraction of inhibited centers in the dark and the kinetics and extent of inhibitor displacement after one flash due to the formation of the Q(A)Q(B)(-) state. The inhibitor release rate was much faster for triazines and o-phenanthroline (t(1/2) in the 50 ms to 1 s range) than for stigmatellin (t(1/2) approximately 20 s). For inhibitors with a rapid release rate, the fast phase of P(+) decay observed in the absence of secondary donor reflects the competition between P(+)Q(A)(-) recombination and inhibitor release: it is thus faster than the P(+)Q(A)(-) recombination, and its relative extent is smaller than the fraction of initially inhibited centers. At appropriate inhibitor concentrations, one can have almost total binding in the dark and almost total inhibitor displacement after one flash. Under such conditions, a pair of closely spaced flashes resets the two-electron gate in a single state (Q(A)Q(B)(-)), irrespective of the initial state. The apparent dissociation constant of terbutryn was significantly increased (by a factor of 4-7) in the presence of Q(A)(-), in agreement with the conclusion of Wraight and co-workers [Stein, R. R., et al. (1984) J. Cell. Biochem. 24, 243-259]. We suggest that this effect is essentially due to a tighter binding of ubiquinone in the Q(A)(-) state.

Anti-Bacterial Agents↗

Coupling of electron and proton transfer in the photosynthetic water oxidase.

According to current estimates, the photosynthetic water oxidase functions with a quite restricted driving force. This emphasizes the importance of the catalytic mechanisms in this enzyme. The general problem of coupling electron and proton transfer is discussed from this viewpoint and it is argued that 'weak coupling' is preferable to 'strong coupling'. Weak coupling can be achieved by facilitating deprotonation either before (proton-first path) or after (electron-first path) the oxidation step. The proton-first path is probably relevant to the oxidation of tyrosine Y(Z) by P-680. Histidine D1-190 is believed to play a key role as a proton acceptor facilitating Y(Z) deprotonation. The pK(a) of an efficient proton acceptor is submitted to conflicting requirements, since a high pK(a) favors proton transfer from the donor, but also from the medium. H-bonding between Y(Z) and His, together with the Coulombic interaction between negative tyrosinate and positive imidazolium, are suggested to play a decisive role in alleviating these constraints. Current data and concepts on the coupling of electron and proton transfer in the water oxidase are discussed.

Electron Transport↗

Interactions between the donor and acceptor sides in bacterial reaction centers.

The apparent equilibrium constant K'(2) for electron transfer between the primary (Q(A)) and secondary (Q(B)) quinone acceptors of the reaction center was measured in chromatophores of Rhodobacter capsulatus. In the presence of the oxidized primary donor P(+), we obtained a value of K'(2)(P(+)) approximately 100 at pH 7.2, based on the rates of recombination from P(+)Q(A-) and P(+)Q(B-). K'(2) was also measured in the presence of reduced P, from the damping of semiquinone oscillations during a series of single turnover flashes. A 5-fold smaller value, K'(2)(P) approximately 20, was found. Additional information on the interactions between the donor and acceptor sides was obtained by measuring the shift of the midpoint potential of P caused by the presence of Q(B-) or Q(A-)S (where S indicates the presence of the inhibitor stigmatellin). A stabilization of the oxidized state P(+) was observed in both instances, by 10 mV for Q(B-) and 30 mV for Q(A-)S. The larger stabilization of P(+)Q(A-)S with respect to P(+)Q(B-) does not account for the effect of P(+)/P on K'(2). Analysis of these results indicates that the interactions between P(+)/P and Q(A)/Q(A)(-) are markedly modified depending on the occupancy of the Q(B) pocket by ubiquinone or by stigmatellin. We propose that the large value of K'(2)(P(+)) results essentially from a conformational destabilization of the P(+)Q(A-) state, that is relieved when the proximal site of the Q(B) pocket is occupied by stigmatellin.

Bacteriochlorophylls↗

Electron and proton transfer on the acceptor side of the reaction center in chromatophores of Rhodobacter capsulatus: evidence for direct protonation of the semiquinone state of QB.

1. The absorption changes associated with the formation of P+QBred (QBred stands for the semiquinone state of the secondary quinone acceptor) were investigated in chromatophores of Rhodobacter capsulatus. Marked modifications of the semiquinone spectrum were observed when the pH was lowered from 7 to 5. These modifications match those expected for a complete conversion of QBred from the anionic state QB- at pH 7 to the neutral protonated state QBH at pH 5. Similar modifications were observed in chromatophores from Rb. sphaeroides, but not in purified reaction centers from Rb. capsulatus, suggesting that the environment of the reaction center (native membrane vs detergent micelle) is the crucial parameter. 2. The recombination reaction P+QBred --> PQB was investigated as a function of pH. No particular kinetic heterogeneity was observed at low pH, showing that QBH remains mostly bound to the reaction center. The rate constant reaches a minimum value of 0.08 s-1 at pH 6, suggesting that the direct route for recombination prevails in chromatophores below this pH, instead of the usual pathway via QA-. 3. The proton uptake caused by QBred is about 1 below pH 7 and decreases at higher pH. It is suggested that the pH dependence of the conversion of QB- to QBH, occurring in a range where the uptake is constant, cannot be accommodated by a purely electrostatic model, but probably involves a conformational change. 4. The kinetics of the electron-transfer reaction QA-QB-->QAQBred were investigated. A 2-fold acceleration was observed between pH 7 and pH 5 (t1/2 approximately 30 and 15 microseconds, respectively). A fast (<<10 microseconds) unresolved phase appears to be present at both pHs. The second electron-transfer QA-QBred-->QAQBH2 proceeds with a similar rate as the first electron transfer (15-30 microseconds phase). Consequences for the rate-limiting step are discussed. 5. The carotenoid shift, indicative of the membrane potential, displays a rising phase concomitant with the QA-QB-->QAQBred electron transfer. Its relative extent is markedly increased at pH 5, with part of the kinetics occurring during the unresolved fast phase. 6. The extent of the electrochromic shift of bacteriopheophytin around 750 nm associated with formation of QBred decreases toward acidic pH, reflecting the charge compensation due to proton uptake and the formation of neutral QBH.

Bacterial Chromatophores↗

Stabilization of charge separation and photochemical misses in photosystem II.

Illumination of photosystem II by a saturating short flash results in a stabilized charge separation in only about 90% of the reaction centers. During a series of flashes, the 10% fraction of "photochemical misses" is randomly redistributed among the centers. This phenomenon is investigated in DCMU-inhibited material, eliminating the contribution to misses due to electron transfer equilibrium on the quinone acceptors. Under such conditions, the miss coefficient is about 5% and is enhanced to about 40% in the presence of hydroxylamine at low pH. When a second flash is fired, its efficiency increases as a function of the time delay after the first flash (turnover experiments). This process involves three distinct time domains: <10 micros, 100 micros, and 10 ms. From a study of the 515-nm field-indicating change, it appears that the increased inefficiency caused by hydroxylamine is not due to a lesser amount of initial charge separation but to a recombination process concomitant with the 100 micros phase of the turnover. The slow turnover phase (10 ms) is not associated with a recombination or any other electron transfer event but reflects a modification of open centers during which their probability to achieve charge stabilization rather than recombination is progressively increased. These results are interpreted in terms of an equilibrium between two conformational states of the centers endowed with different stabilization yield ("good" and "bad " stabilizers). The 100 micros turnover phase is due to the reopening of the bad stabilizers by recombination, and the 10 ms phase accompanies the redistribution of these centers among the two conformational states.

Chlorella↗

Small-diameter (2 mm) laparoscopy in the evaluation of liver disease.

BACKGROUND: Percutaneous liver biopsy fails to demonstrate cirrhosis in approximately 32% of cases when compared with laparoscopy with liver biopsy. The aim of this study is to determine the usefulness of small-diameter (2 mm) laparoscopes compared with larger laparoscopes. METHODS: Patients undergoing diagnostic laparoscopy for various liver diseases were evaluated with small-diameter (2 mm) laparoscopes either alone or in combination with a 5 or 10 mm laparoscope. RESULTS: Twenty patients were enrolled in this study. Small-diameter laparoscopes provided appropriate visualization of the abdominal organs and proper guidance to liver biopsy in 9 cases. In the remaining 11 cases a larger laparoscope was used for the following reasons: short length of the trocar/introducer in a morbidly obese patient (1), liver mass located in the anterosuperior aspect of the liver precluding good visualization with forward lenses (1), and inability to properly visualize the anterosuperior aspect of the liver (9). No complications were noted with the use of the small-diameter laparoscopes alone. CONCLUSION: There is a need for an oblique-viewing minilaparoscope that allows visualization comparable to the larger laparoscopes.

Adult↗

Charge recombination and proton transfer in manganese-depleted photosystem II.

The proton transfer reactions induced by the oxidation and reduction of the secondary donor, tyrosine YZ, have been studied in photosystem II after inactivation (Mn-depletion) of the oxygen-evolving complex. The rate of the recombination reaction of YZox with the reduced primary acceptor QA- appears modulated by a protonatable group with pK approximately 6 in the presence of YZox. The finding of monophasic recombination kinetics requires that the proton equilibration of this group is faster than the recombination rate. The same group modulates the extent of proton release, from 0 below pH 5 to 1 per center above pH 7. The kinetics of proton appearance and disappearance in the bulk medium are markedly dependent on the material used. In PSII core particles, the release is observed in the 100 micros range and the uptake accompanies the recombination reaction. In PSII membranes, both of these reactions are markedly delayed, so that the uptake considerably lags behind the completion of the recombination reaction. An electrochromic shift of a chlorophyll is present during the whole lifetime of YZox, suggesting a charged character of this species. A fast decreasing phase of this signal was observed in particles in the same time range as proton release. These results are discussed in the framework of a model where the proton originating from the formation of the neutral oxidized tyrosine radical (YZ.) remains locally trapped. In turn, this proton shifts the pK of a nearby group from a value >/=9 to a value of 6.

Animals↗

Laparoscopic cholecystectomy in the elderly.

BACKGROUND: Advanced age with its concomitant comorbid conditions may be associated with increased postoperative laparoscsopic cholecystectomy (LC) complications and more frequent conversion to open cholecystectomy (OC). The purpose of this study was to evaluate the outcome of LC in patients age 65 and older. METHODS: Ninety consecutive patients were studied age 65 and older, of whom 39 (43%) were males and 51 (57%) were females, mean age 74 years (range 65-98), with 20 patients (22%) >/= 80. Indications for surgery included biliary colic 55 (61%), acute cholecystitis 22 (24%), pancreatitis 10 (11%), and cholangitis 3 (4%). Seventeen patients (19%) had preoperative ERCP, 12 of which were normal; five had sphincterotomy with stone extraction. Comorbid conditions included hypertension (44%), CAD (17%), cardiac arrhythmias (18), CHF (9%), and COPD (7%). RESULTS: Operative time-mean 1 h 51 min +/- SD 43 min. Conversion to OC-three patients (3%). Length of stay-mean 5 days (range 1-26). Mortality-two patients (2%) >80 years old, one patient with septicemia and multiorgan failure whose comorbid diseases included CAD, C.F., COPPED, and elevated BP, one patient with MI postsurgery, morbid diseases included DM and CAD. Complications-five patients (5%): bile leak from cystic duct stump (one), postsurgery MI (two), incarcerated incisional hernia (one), septicemia (one). CONCLUSION: Morbidity rates for LC in the elderly population are not different from that reported for patients less than 65 years of age. (5% vs 6%, Fried et al., Surg Clin North Am 1994;74 [2]: 375-387). Our 2% mortality rate is statistically different from previously reported in a series of patients of all ages (0.6%, Fried et al.). The 3% rate of conversion to OC in this older population is not significantly different from the patients in Fried et al. series (4%).

Acute Disease↗

Biochemical and functional properties of photosystem II in agranal membranes from maize mesophyll and bundle sheath chloroplasts.

We have studied the occurrence and organization of photosystem II (PSII) in bundle sheath thylakoids and stroma lamellae from maize. As shown by non-denaturing lauryl beta-D- iminopropionidate (Deriphat)/PAGE, PSII exists in a dimeric form in grana membranes. In bundle sheath and stroma lamellae, however, only a monomeric form was found. Based on immunotitration data, we estimated the stoichiometry of the individual components of the PSII core complex and antenna systems. In stroma lamellae, all PSII antenna complexes had a stoichiometry similar to that in grana membranes, with the exception of light-harvesting complex II (LHCII) that was somewhat over-represented, while the minor antenna complexes CP26 and CP29 were under-represented. In bundle sheath, the amount of LHCII was approximately eight times higher than expected with respect to D1. The 33-kDa protein of the oxygen-evolving enhancer polypeptides was not detectable nor was the ferredoxin-NADP+ reductase, thus strongly suggesting that no significant linear electron transport occurs in bundle sheath thylakoids. Fluorescence induction data suggest that most of the PSII reaction centers in bundle sheath and stroma lamellae sustain electron transport towards a secondary acceptor pool. Stromal PSII centers are only weakly inhibited by 3-(3,4-dichlorophenyl)-1,1-dimethylurea (diuron), whereas, unexpectedly, dichlorobenzoquinone and methyl viologen had a pronounced inhibitory effect of the QA- reoxidation. An additional specificity of these centers is the slow rate (50-ms range) of the QA to QB electron transfer. The amplitude of variable fluorescence found in stroma lamellae can only account for a small fraction (1-2%) of the variable fluorescence of whole thylakoids. This suggests that stromal PSII cannot be solely responsible for the slow beta-phase of the induction kinetics.

Chlorophyll↗

Theory of fluorescence induction in photosystem II: derivation of analytical expressions in a model including exciton-radical-pair equilibrium and restricted energy transfer between photosynthetic units.

The theoretical relationships between the fluorescence and photochemical yields of PS II and the fraction of open reaction centers are examined in a general model endowed with the following features: i) a homogeneous, infinite PS II domain; ii) exciton-radical-pair equilibrium; and iii) different rates of exciton transfer between core and peripheral antenna beds. Simple analytical relations are derived for the yields and their time courses in induction experiments. The introduction of the exciton-radical-pair equilibrium, for both the open and closed states of the trap, is shown to be equivalent to an irreversible trapping scheme with modified parameters. Variation of the interunit transfer rate allows continuous modulation from the case of separated units to the pure lake model. Broadly used relations for estimating the relative amount of reaction centers from the complementary area of the fluorescence kinetics or the photochemical yield from fluorescence levels are examined in this framework. Their dependence on parameters controlling exciton decay is discussed, allowing assessment of their range of applicability. An experimental induction curve is analyzed, with a discussion of its decomposition into alpha and beta contributions. The sigmoidicity of the induction kinetics is characterized by a single parameter J related to Joliot's p, which is shown to depend on both the connectivity of the photosynthetic units and reaction center parameters. On the other hand, the relation between J and the extreme fluorescence levels (or the deviation from the linear Stern-Volmer dependence of 1/phi f on the fraction of open traps) is controlled only by antenna connectivity. Experimental data are consistent with a model of connected units for PS II alpha, intermediate between the pure lake model of unrestricted exciton transfer and the isolated units model.

Energy Transfer↗

Nonspecific immunity in Down syndrome: a study of chemotaxis, phagocytosis, oxidative metabolism, and cell surface marker expression of polymorphonuclear cells.

We have investigated several aspects of nonspecific immunity in Down syndrome (DS), utilizing peripheral polymorphonuclear leukocytes (PMNL), obtained from 12 children aged 8-16, diagnosed as trisomy 21, and their healthy matched controls. We used the under agarose method for chemotaxis assays, and flow cytometry for the determination of phagocytosis of monodispersed fluorescent beads, metabolic burst activity, and neutrophil surface marker expression on these cells. Our results indicate that a chemotactic defect exists in PMNL of DS children. However, no statistically significant differences were found between PMNL from DS children and those from controls in phagocytosis, oxidative burst, and expression of the markers CD11a, CD11b, CD16, and CD 18. Furthermore, no overexpression of CD11a and CD18 was present as a consequence of gene overdosage in PMNL from DS children. On the other hand, 3 different neutrophil subpopulations could be observed according to the CD16 staining pattern in DS children and controls; this might be a consequence of genetic variation or may represent different states of activation of these cells. Other factors such as T-cell involvement, and the role of cytokines, cyclic nucleotides, and zinc serum levels in DS patients should be further investigated in order to define the causes of the immunological derangement present in this condition.

Adolescent↗

Effect of various microbial preparations on P-388 mouse lymphocytic leukemia.

Four bacteria-derived immunopotentiators were tested for their protective effect on a P-388 mouse lymphocytic leukemia model. The microbial test products were prepared from the following bacterial strains: ATCC 35983 Staphylococcus epidermidis isolated from a patient with IV catheter; ATCC 31874, a patented strain listed as Staphylococcus epidermidis isolated from the urine of a cancer patient; ATCC 25615 Staphylococcus hominis obtained from a child with lymphocytic leukemia, and ATCC 25614 Staphylococcus warneri, an isolate from a patient with adenocarcinoma of the breast. A limited degree of protection and prolongation in survival time was observed in the animal group treated with the bacterial strain ATCC 31874.

Adjuvants, Immunologic↗

Proton release during successive oxidation steps of the photosynthetic water oxidation process: stoichiometries and pH dependence.

Flash-induced absorption changes of pH-indicating dyes were investigated in photosystem II enriched membrane fragments, in order to retrieve the individual contributions to proton release of the successive transitions of the Kok cycle. These stoichiometric coefficients were found to be, in general, noninteger and to vary as a function of pH. Proton release on the S0----S1 step decreases from 1.75 at pH 5.5 to 1 at pH 8, while, on S1----S2 the stoichiometry increases from 0 to 0.5 in the same pH range and remains close to 1 for S2----S3. These findings are analyzed in terms of pK shifts of neighboring amino acid residues caused by electrostatic interactions with the redox centers involved in the two first transitions. The electrochromic shift of a chlorophyll, associated with the S transitions, responding to local electrostatic effects was investigated under similar conditions. The pH dependence of this signal upon the successive transitions was found correlated with the titration of the proton release stoichiometries, expressing the electrostatic balance between the oxidation and deprotonation processes.

Chlorophyll↗

Restricted diffusion in photosynthetic membranes.

The structural organization of membrane proteins and their linkage by diffusion are topics of much debate. Functional studies in photosynthetic membranes, where rapid equilibration of electron transport between redox centers appears restricted to isolated domains, shed new light on the subject.

Cell Membrane↗