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Publications

Mpetga, J. D. S.; Nago, R. D. T.; Tamokou, J.-D.-D.; Fobofou, S. A. T.; Bitchagno, G. T. M.; Wessjohann, L. A.; Tene, M.; Ngouela, A. S.; A new ceramide from Cissus aralioides Baker (Vitaceae) and its antimicrobial activity Chem. Biodivers. 19 e202200678 (2022) DOI: 10.1002/cbdv.202200678
  • Abstract
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Purification through repeated column chromatography over silica gel and Sephadex LH-20 of the ethanol extract of the stems of Cissus aralioides (Baker) Planch. resulted in the isolation of a new ceramide, aralioidamide A (1) along with five known compounds (2-6). Their structures were determined by the extensive analysis of their spectroscopic (1D and 2D NMR) and spectrometric data, and comparison with those reported in the literature. Aralioidamide A (1) displayed weak antibacterial activity (MIC = 256 μg/mL) against Bacillus subtilis, Staphylococcus aureus and Shigella flexneri and was inactive (MIC > 256 μg/mL) against the tested fungi.

Publications

Wittmann, I.; Schierling, A.; Dettner, K.; Göhl, M.; Schmidt, J.; Seifert, K.; Detection of a New Piperideine Alkaloid in the Pygidial Glands of Some Stenus Beetles Chem. Biodivers. 12 1422-1434 (2015) DOI: 10.1002/cbdv.201400391
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Rove beetles of the genus Stenus produce and store bioactive alkaloids like stenusine (3), 3‐(2‐methylbut‐1‐enyl)pyridine (4), and cicindeloine (5) in their pygidial glands to protect themselves from predation and microorganismic infestation.The biosynthesis of stenusine (3), 3‐(2‐methylbut‐1‐enyl)pyridine (4), and cicindeloine (5) was previously investigated in Stenus bimaculatus, Stenus similis, and Stenus solutus, respectively. The piperideine alkaloid cicindeloine (5) occurs also as a major compound in the pygidial gland secretion of Stenus cicindeloides. The three metabolites follow the same biosynthetic pathway, where the N‐heterocyclic ring is derived from L‐lysine and the side chain from L‐isoleucine. The different alkaloids are finally obtained by few modifications of shared precursor molecules, such as 2,3,4,5‐tetrahydro‐5‐(2‐methylbutylidene)pyridine (1). This piperideine alkaloid was synthesized and detected by GC/MS and GC at a chiral phase in the pygidial glands of Stenus similis, Stenus tarsalis, and Stenus cicindeloides.

Publications

Farag, M. A.; Al-Mahdy, D. A.; Salah El Dine, R.; Fahmy, S.; Yassin, A.; Porzel, A.; Brandt, W.; Structure-Activity Relationships of Antimicrobial Gallic Acid Derivatives from Pomegranate and Acacia Fruit Extracts against Potato Bacterial Wilt Pathogen Chem. Biodivers. 12 955-962 (2015) DOI: 10.1002/cbdv.201400194
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Bacterial wilts of potato, tomato, pepper, and or eggplant caused by Ralstonia solanacearum are among the most serious plant diseases worldwide. In this study, the issue of developing bactericidal agents from natural sources against R. solanacearum derived from plant extracts was addressed. Extracts prepared from 25 plant species with antiseptic relevance in Egyptian folk medicine were screened for their antimicrobial properties against the potato pathogen R. solancearum by using the disc‐zone inhibition assay and microtitre plate dilution method. Plants exhibiting notable antimicrobial activities against the tested pathogen include extracts from Acacia arabica and Punica granatum. Bioactivity‐guided fractionation of A. arabica and P. granatum resulted in the isolation of bioactive compounds 3,5‐dihydroxy‐4‐methoxybenzoic acid and gallic acid, in addition to epicatechin. All isolates displayed significant antimicrobial activities against R. solanacearum (MIC values 0.5–9 mg/ml), with 3,5‐dihydroxy‐4‐methoxybenzoic acid being the most effective one with a MIC value of 0.47 mg/ml. We further performed a structure–activity relationship (SAR) study for the inhibition of R. solanacearum growth by ten natural, structurally related benzoic acids.

Publications

Wasternack, C.; Hause, B.; Blütenduft, Abwehr, Entwicklung: Jasmonsäure - ein universelles Pflanzenhormon Biologie in unserer Zeit 44 164-171 (2014) DOI: 10.1002/biuz.201410535
  • Abstract
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Pflanzen müssen gegen vielfältige biotische und abiotische Umwelteinflusse eine Abwehr aufbauen. Aber gleichzeitig müssen sie wachsen und sich vermehren. Jasmonate sind neben anderen Hormonen ein zentrales Signal bei der Etablierung von Abwehrmechanismen, aber auch Signal von Entwicklungsprozessen wie Blüten‐ und Trichombildung, sowie der Hemmung von Wachstum. Biosynthese und essentielle Komponenten der Signaltransduktion von JA und seinem biologisch aktiven Konjugat JA‐Ile sind gut untersucht. Der Rezeptor ist ein Proteinkomplex, der “JA‐Ile‐Wahrnehmung” mit proteasomalem Abbau von Repressorproteinen verbindet. Dadurch können positiv agierende Transkriptionsfaktoren wirksam werden und vielfältige Genexpressionsänderungen auslösen. Dies betrifft die Bildung von Abwehrproteinen, Enzymen der JA‐Biosynthese und Sekundärstoffbildung, und Proteinen von Signalketten und Entwicklungsprozessen. Die Kenntnisse zur JA‐Ile‐Wirkung werden in Landwirtschaft und Biotechnologie genutzt.

Publications

Walter, M. H.; Floß, D. S.; Strack, D.; Die facettenreiche Welt der Apocarotinoide. Farben, Düfte, Aromen und Hormone Biologie in unserer Zeit 39 336-344 (2009) DOI: 10.1002/biuz.200910402
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Apocarotinoide werden durch hochspezifische Spaltungsreaktionen oxidativer Enzyme an den Doppelbindungen von Carotinoiden maßgeschneidert. Es können neue Chromophore entstehen, die zusätzliche Nuancen des gelb‐roten Farbspektrums eröffnen. Farblose C13‐Apocarotinoide können potente Duft‐ und Aromastoffe sein. Viele Apocarotinoidfunktionen mit Hormoncharakter sind lange bekannt (Abszisinsäure in Pflanzen, Trisporsäure in Pilzen, Retinsäure in Säugern). Eine neue Klasse von Apocarotinoid‐Pflanzenhormonen, die die Sprossverzweigung der Pflanzen mitbestimmen, wurde kürzlich als Strigolactone identifiziert. In ihrer Biosynthese wie auch in der von mykorrhizainduzierten C13/C14‐Apocarotinoiden treten mehrstufige aufeinanderfolgende Carotinoidspaltungsreaktionen auf. Das Wissen über Synthesewege und Funktionen von Apocarotinoiden eröffnet neue Perspektiven für Anwendungen im Zierpflanzenbau, bei der Bekämpfung parasitischer Unkräuter und in der Beeinflussung von Blütendüften und Fruchtaromen.

Publications

Schaarschmidt, S.; Hause, B.; Strack, D.; Wege zur Endomykorrhiza. Einladung ans Buffet Biologie in unserer Zeit 39 102-113 (2009) DOI: 10.1002/biuz.200610385
  • Abstract
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Die Lebensgemeinschaft mit Mykorrhizapilzen stellt Pflanzen mineralische Nährstoffe und Wasser zur Verfügung und gilt daher als evolutionäre Grundlage für die Entwicklung der Landpflanzen. Die heute weit verbreitete arbuskuläre Mykorrhiza (AM) ist insbesondere unter widrigen Bedingungen (Nährstoffmangel, Trocken‐, Salz‐ oder Schwermetallstress sowie Pathogenbefall) für die Pflanze von Nutzen. Der pilzliche AM‐Partner, der obligat auf die Interaktion angewiesen ist, wird im Gegenzug mit Kohlenhydraten versorgt. Der Artikel beschreibt den aktuellen Stand der Forschung bezüglich der Etablierung und Regulation der AM durch die Pflanze. Es werden die frühen Erkennungssignale und die nachfolgende Wegbereitung der Pflanze für den eindringenden Pilz, die Kohlenhydratversorgung des AM‐Pilzes, wie auch die Limitierung der pilzlichen Infektionen mittels Autoregulation und die Rolle der Phytohormone für eine funktionelle und ausgeglichene Symbiose behandelt.

Publications

Teichert, A.; Schmidt, J.; Porzel, A.; Arnold, N.; Wessjohann, L.; N-Glucosyl-1H-indole Derivatives from Cortinarius brunneus (Basidiomycetes) Chem. Biodivers. 5 664-669 (2008) DOI: 10.1002/cbdv.200890062
  • Abstract
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Two new N ‐glucosylated indole alkaloids were isolated from fruiting bodies of the basidiomycete Cortinarius brunneus (Pers .) Fr . The structures were elucidated by means of the spectroscopic data. Additionally, the very recently reported compounds N‐ 1‐β‐ glucopyranosyl‐3‐(carboxymethyl)‐1H ‐indole (3 ) and N‐ 1‐β‐ glucopyranosyl‐3‐(2‐methoxy‐2‐oxoethyl)‐1H ‐indole (4 ) could be detected. Compound 3 is the N ‐glucoside of the plant‐growth regulator 1H ‐indole‐3‐acetic acid (IAA), but, in contrast, it does not exhibit auxin‐like activity in an Arabidopsis thaliana tap root elongation assay.

Publications

Wessjohann, L.; Schneider, A.; Synthesis of Selenocysteine and Its Derivatives with an Emphasis on Selenenylsulfide (-Se-S-) Formation Chem. Biodivers. 5 375-388 (2008) DOI: 10.1002/cbdv.200890038
  • Abstract
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A short survey of historic and current methods for the synthesis of selenocysteine, selenocystine, and derivatives and related compounds is presented, with an additional emphasis on the formation of selenocysteine‐derived SeS bridges. The majority of methods to the amino acid starts with protected and O ‐activated serine, but also other concepts are included such as radical or multicomponent strategies, the latter allowing also direct access to peptoids in one pot. Of special importance is the monomeric oxidative cyclization of selenocysteine–cysteine peptides to eight‐membered and larger rings with a selenenylsulfide bridge, a crucial element in several selenoproteins.

Publications

Seipold, L.; Gerlach, G.; Wessjohann, L.; A New Type of Floral Oil from Malpighia coccigera (Malpighiaceae) and Chemical Considerations on the Evolution of Oil Flowers Chem. Biodivers. 1 1519-1528 (2004) DOI: 10.1002/cbdv.200490112
  • Abstract
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New, partially acetylated dihydroxy fatty acids could be identified in the floral oil of Malpighia coccigera (Malpighiaceae): 7‐OAc,3‐OH 20 : 0, 7‐OAc,3‐OH 22 : 0, 9‐OAc,3‐OH 22 : 0, 9‐OAc,5‐OH 22 : 0, 3,9‐diOAc 22 : 0, 9‐OAc,3‐OH 24 : 0 , and 11‐OAc,5‐OH 24 : 0 . The substitution patterns of all hitherto undescribed dihydroxylated and additionally identified monohydroxylated fatty acids are in agreement with a polyketide analogous biosynthesis. Intermediates may be 3‐acetoxy fatty acids (C16, C18, and C20), known from flower secretions of other phylogenetically unrelated plant families. A possible relationship between plant epicuticular wax and floral oil biosynthesis is discussed. It may explain why an independent but convergent development of oil flowers and flower oils in unrelated plant families was possible.

Publications

Strack, D.; Fester, T.; Hause, B.; Walter, M. H.; Die arbuskuläre Mykorrhiza: Eine unterirdische Lebensgemeinschaft Biologie in unserer Zeit 31 286-295 (2001) DOI: 10.1002/1521-415X(200109)31:5<286::AID-BIUZ286>3.0.CO;2-G
  • Abstract
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Pflanzen und bestimmte Pilze haben im Laufe ihrer Entwicklungsgeschichte „gelernt”︁, in einer engen Assoziation im Boden, der Mykorrhiza, eine äußerst erfolgreiche Symbiose miteinander einzugehen. Arbuskuläre Mykorrhizapilze helfen Pflanzen sich auf nährstoffarmen Böden ausreichend mit Wasser, Nährsalzen und Spurenelementen zu versorgen und fördern entscheidend Diversität und Produktivität von Pflanzengesellschaften. Darüber hinaus zeigen mykorrhizierte Pflanzen eine erhöhte Widerstandsfähigkeit gegen Pathogenbefall. Im Gegenzug „bezahlt”︁ die Pflanze den Pilz für diesen Gewinn mit Kohlenhydraten in Form einfacher Zucker (Glucose, Fructose). Durch manche Erfolge in der Erforschung der Mykorrhiza auf Metaboliten‐ und Genebene beginnen wir allmählich zu erahnen, wie komplex die molekularen Interaktionen dieser Symbiose sind. Es ist zu erwarten, dass das steigende Interesse an der Mykorrhizaforschung zu neuen Einsichten in die Strategien von Pflanzen und Pilzen in der Entwicklung mutualistisch‐symbiontischer Assoziationen führen wird.

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