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1.
Anal Biochem ; 348(2): 192-7, 2006 Jan 15.
Artigo em Inglês | MEDLINE | ID: mdl-16337140

RESUMO

Chlorophyll biosynthetic heterogeneity is rooted mainly in parallel divinyl (DV) and monovinyl (MV) biosynthetic routes interconnected by 4-vinyl reductases (4VRs) that convert DV tetrapyrroles to MV tetrapyrroles by conversion of the vinyl group at position 4 of the macrocycle to ethyl. What is not clear at this stage is whether the various 4VR activities are catalyzed by one enzyme of broad specificity or by a family of enzymes encoded by one gene or multiple genes with each enzyme having narrow specificity. Additional research is needed to identify the various regulatory components of 4-vinyl reduction. In this undertaking, Arabidopsis mutants that accumulate DV chlorophyllide a and/or DV chlorophyll [Chl(ide)] a are likely to provide an appropriate resource. Because the Arabidopsis genome has been completely sequenced, the best strategy for identifying 4VR and/or putative regulatory 4VR genes is to screen Arabidopsis Chl mutants for DV Chl(ide) a accumulation. In wild-type Arabidopsis, a DV plant species, only MV chlorophyllide (Chlide) a is detectable. However in Chl mutants lacking 4VR activity, DV Chl(ide) a may accumulate in addition to MV Chl(ide) a. In the current work, an in situ assay of DV Chl(ide) a accumulation, suitable for screening a large number of mutants lacking 4-vinyl Chlide a reductase activity with minimal experimental handling, is described. The assay involves homogenization of the tissues in Tris-HCl:glycerol buffer and the recording of Soret excitation spectra at 77K. DV Chlide a formation is detected by a Soret excitation shoulder at 459 nm over a wide range of DV Chlide a/MV Chl a ratios. The DV Chlide a shoulder became undetectable at DV Chlide a/MV Chl a ratios less than 0.049, that is, at a DV Chlide a content of less than 5%.


Assuntos
Cloroplastos/genética , Testes Genéticos/métodos , Mutação , Oxirredutases/genética , Cloroplastos/enzimologia , Cucumis sativus/enzimologia , Cucumis sativus/genética , Plantas/enzimologia , Plantas/genética , Espectrofotometria
2.
Anal Biochem ; 329(2): 207-19, 2004 Jun 15.
Artigo em Inglês | MEDLINE | ID: mdl-15158479

RESUMO

The thorough understanding of photosynthetic membrane assembly requires a deeper knowledge of the coordination and regulation of the chlorophyll (Chl) and thylakoid apoprotein biosynthetic pathways. As a working hypothesis we have recently proposed three different Chl-thylakoid apoprotein biosynthesis models: a single-branched Chl biosynthetic pathway (SBP)-single location model, a SBP-multilocation model, and a multibranched Chl biosynthetic pathway (MBP)-sublocation model. The detection of resonance excitation energy transfer between tetrapyrrole precursors of Chl, and several Chl-protein complexes, has made it possible to test the validity of the proposed Chl-thylakoid apoprotein biosynthesis models by resonance excitation energy transfer determinations. In this work, resonance excitation energy transfer techniques that allow the determination of distances separating tetrapyrrole donors from Chl-protein acceptors in green plants by using readily available electronic spectroscopic instrumentation are developed. It is concluded that the calculated distances are compatible with the MBP-sublocation model and incompatible with the operation of the SBP-single location Chl-protein biosynthesis model.


Assuntos
Clorofila/metabolismo , Tetrapirróis/metabolismo , Tilacoides/metabolismo , Clorofila A , Cucumis sativus/metabolismo , Interpretação Estatística de Dados , Hordeum/metabolismo , Espectrometria de Fluorescência , Temperatura , Tilacoides/química
3.
J Biol Chem ; 278(50): 49675-8, 2003 Dec 12.
Artigo em Inglês | MEDLINE | ID: mdl-14594820

RESUMO

It has recently been reported that protochlorophyllide (Pchlide) b is an abundant pigment in barley etioplasts but is rather unstable, as it is rapidly converted to Pchlide a by 7-formyl reductase during pigment extraction with conventional 80% acetone (Reinbothe, S., Pollmann, S., and Reinbothe, C. (2003) J. Biol. Chem. 278, 800-806). It has also been claimed that extraction of barley etioplasts with 100% acetone containing 0.1% diethyl pyrocarbonate prevents the conversion of Pchlide b to Pchlide a and leads to the detection of large amounts of Pchlide b in the isolated etioplasts. In this work the extraction protocol of Reinbothe et al. is compared with the more conventional 80% aqueous acetone extraction method. No Pchlide b was detected either in etiolated barley leaves or isolated barley etioplasts irrespective of the extraction protocol. On the other hands, small amounts of Pchlide b were detected in green barley leaves and isolated chloroplasts, extracted either with 80% acetone or 100% acetone containing 0.1% diethyl pyrocarbonate. It is concluded that the proposed occurrence of a light-harvesting POR-Pchlide-a,b complex in etiolated plant tissues is untenable, and its ensuing consequences and implications, for the greening process, are irrelevant.


Assuntos
Cloroplastos/metabolismo , Protoclorifilida/química , Acetona/química , Acetona/farmacologia , Clorofila/química , Dietil Pirocarbonato/farmacologia , Hordeum/metabolismo , Luz , Fotobiologia , Pigmentos Biológicos/química , Folhas de Planta/química , Fenômenos Fisiológicos Vegetais , Proteínas de Plantas/química , Plastídeos/química , Espectrometria de Fluorescência
4.
Photochem Photobiol ; 78(2): 184-96, 2003 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-12945588

RESUMO

The thorough understanding of photosynthetic membrane assembly requires a deeper knowledge of the coordination of chlorophyll (Chl) and thylakoid apoprotein biosynthesis. As a working model for future investigations, we have proposed three Chl-thylakoid apoprotein biosynthesis models, namely, a single-branched Chl biosynthetic pathway (SBP) single-location model, an SBP multilocation model and a multibranched Chl biosynthetic pathway (MBP) sublocation model. Rejection or validation of these models can be probed by determination of resonance excitation energy transfer between various tetrapyrrole intermediates of the Chl biosynthetic pathway and various thylakoid Chl-protein complexes. In this study we describe the detection of resonance energy transfer between protoporphyrin IX (Proto), Mg-Proto and its monomethyl ester (Mp(e)) and divinyl and monovinyl protochlorophyllide a (Pchlide a) and several Chl-protein complexes. Induction of various amounts of tetrapyrrole accumulation in green photoperiodically grown cucumber cotyledons and barley leaves was achieved by dark incubation of excised tissues with delta-aminolevulinic acid (ALA) and various concentrations of 2,2'-dipyridyl for various periods of time. Controls were incubated in distilled water. After plastid isolation, treated and control plastids were diluted in buffered glycerol to the same Chl concentration. Excitation spectra were then recorded at 77 K at emission maxima of about 686, 694 and 738 nm. Resonance excitation energy transfer from Proto, Mp(e) and Pchlide a to Chl-protein complexes emitting at 686, 694 and 738 nm was observed by calculation of treated minus control difference excitation spectra. The occurrence of resonance excitation energy transfer between anabolic tetrapyrroles and Chl-protein complexes appeared as well-defined excitation bands with excitation maxima corresponding to those of Proto, Mp(e) and Pchlide a. Furthermore, it appeared that resonance excitation energy transfer from multiple short-wavelength, medium-wavelength and long-wavelength Proto, Mp(e) and Chlide a sites to various Chl-protein complexes took place. Because resonance excitation transfer from donors to acceptors cannot take place at distances larger than 100 A, it is proposed that the observed resonance excitation energy transfers are not compatible with the SBP single-location Chl biosynthesis thylakoid membrane biogenesis model. The latter assumes that a single-branched Chl biosynthetic pathway located in the center of a 450 x 130 A photosynthetic unit generates all of the Chl needed for the assembly of all Chl-protein complexes.


Assuntos
Clorofila/biossíntese , Cloroplastos/fisiologia , Clorofila A , Cucumis sativus/metabolismo , Grão Comestível/metabolismo , Transferência de Energia , Hordeum/metabolismo , Espectrometria de Fluorescência
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