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Background: The oral administration of the gum resin extracts of Indian frankincense (Boswellia serrata Roxb. ex Colebr) results in very low plasma concentrations of boswellic acids (BAs), being far below the pharmacologically active concentrations required in vitro for anti-inflammatory activity. For that reason the use of Indian frankincense in clinical practice and pharmaceutical development has substantially lagged behind. Recently the application of new formulation technologies resulted in a formulation of frankincense extract with lecithin, which revealed improved absorption and tissue penetration of BAs in a rodent study, leading for the first time to plasma concentrations of BAs in the range of their anti-inflammatory activity.
Purpose: In order to verify these encouraging results in humans, the absorption of a standardized Boswellia serrata extract (BE) and its lecithin formulation (CSP) was comparatively investigated in healthy volunteers.
Study design: According to a randomized cross-over design with two treatments, two sequences and two periods, 12 volunteers alternatively received the lecithin-formulated Boswellia extract (CSP) or the non-formulated Boswellia extract (BE) at a dosage of 2 × 250 mg capsules.
Methods: The plasma concentrations of the six major BAs (KBA, AKBA, βBA, αBA, AβBA, AαBA) were determined using LC/MS.
Results: With the exception of KBA, a significantly higher (both in terms of weight-to-weight and molar comparison) and quicker absorption of BAs from the lecithin formulation was observed, leading to Cmax in the range required for the interaction with their molecular targets.
Conclusion: These findings pave the way to further studies evaluating the clinical potential of BAs, and verify the beneficial effect of lecithin formulation to improve the absorption of poorly soluble phytochemicals.
Bromodomain-containing protein 4 (BRD4) is a member of the bromo- and extraterminal (BET) domain-containing family of epigenetic readers which is under intensive investigation as a target for anti-tumor therapy. BRD4 plays a central role in promoting the expression of select subsets of genes including many driven by oncogenic transcription factors and signaling pathways. However, the role of BRD4 and the effects of BET inhibitors in non-transformed cells remain mostly unclear. We demonstrate that BRD4 is required for the maintenance of a basal epithelial phenotype by regulating the expression of epithelial-specific genes including TP63 and Grainy Head-like transcription factor-3 (GRHL3) in non-transformed basal-like mammary epithelial cells. Moreover, BRD4 occupancy correlates with enhancer activity and enhancer RNA (eRNA) transcription. Motif analyses of cell context-specific BRD4-enriched regions predicted the involvement of FOXO transcription factors. Consistently, activation of FOXO1 function via inhibition of EGFR-AKT signaling promoted the expression of TP63 and GRHL3. Moreover, activation of Src kinase signaling and FOXO1 inhibition decreased the expression of FOXO/BRD4 target genes. Together, our findings support a function for BRD4 in promoting basal mammary cell epithelial differentiation, at least in part, by regulating FOXO factor function on enhancers to activate TP63 and GRHL3 expression.
Peptidyl arginine deiminase 4 (PAD4) is a nuclear enzyme that converts arginine residues to citrulline. Although increasingly implicated in inflammatory disease and cancer, the mechanism of action of PAD4 and its functionally relevant pathways remains unclear. E2F transcription factors are a family of master regulators that coordinate gene expression during cellular proliferation and diverse cell fates. We show that E2F-1 is citrullinated by PAD4 in inflammatory cells. Citrullination of E2F-1 assists its chromatin association, specifically to cytokine genes in granulocyte cells. Mechanistically, citrullination augments binding of the BET (bromodomain and extra-terminal domain) family bromodomain reader BRD4 (bromodomain-containing protein 4) to an acetylated domain in E2F-1, and PAD4 and BRD4 coexist with E2F-1 on cytokine gene promoters. Accordingly, the combined inhibition of PAD4 and BRD4 disrupts the chromatin-bound complex and suppresses cytokine gene expression. In the murine collagen-induced arthritis model, chromatin-bound E2F-1 in inflammatory cells and consequent cytokine expression are diminished upon small-molecule inhibition of PAD4 and BRD4, and the combined treatment is clinically efficacious in preventing disease progression. Our results shed light on a new transcription-based mechanism that mediates the inflammatory effect of PAD4 and establish the interplay between citrullination and acetylation in the control of E2F-1 as a regulatory interface for driving inflammatory gene expression.
Peptidyl arginine deiminase 4 (PAD4) is a nuclear enzyme that converts arginine residues to citrulline. Although increasingly implicated in inflammatory disease and cancer, the mechanism of action of PAD4 and its functionally relevant pathways remains unclear. E2F transcription factors are a family of master regulators that coordinate gene expression during cellular proliferation and diverse cell fates. We show that E2F-1 is citrullinated by PAD4 in inflammatory cells. Citrullination of E2F-1 assists its chromatin association, specifically to cytokine genes in granulocyte cells. Mechanistically, citrullination augments binding of the BET (bromodomain and extra-terminal domain) family bromodomain reader BRD4 (bromodomain-containing protein 4) to an acetylated domain in E2F-1, and PAD4 and BRD4 coexist with E2F-1 on cytokine gene promoters. Accordingly, the combined inhibition of PAD4 and BRD4 disrupts the chromatin-bound complex and suppresses cytokine gene expression. In the murine collagen-induced arthritis model, chromatin-bound E2F-1 in inflammatory cells and consequent cytokine expression are diminished upon small-molecule inhibition of PAD4 and BRD4, and the combined treatment is clinically efficacious in preventing disease progression. Our results shed light on a new transcription-based mechanism that mediates the inflammatory effect of PAD4 and establish the interplay between citrullination and acetylation in the control of E2F-1 as a regulatory interface for driving inflammatory gene expression.
IKZF1 deletion (ΔIKZF1) is an important predictor of relapse in childhood B-cell precursor acute lymphoblastic leukemia. Because of its clinical importance, we previously mapped breakpoints of intragenic deletions and developed a multiplex PCR assay to detect recurrent intragenic ΔIKZF1. Since the multiplex PCR was not able to detect complete deletions (IKZF1 Δ1-8), which account for ~30% of all ΔIKZF1, we aimed at investigating the genomic scenery of IKZF1 Δ1-8. Six samples of cases with IKZF1 Δ1-8 were analyzed by microarray assay, which identified monosomy 7, isochromosome 7q, and large interstitial deletions presenting breakpoints within COBL gene. Then, we established a multiplex ligation-probe amplification (MLPA) assay and screened copy number alterations within chromosome 7 in 43 diagnostic samples with IKZF1 Δ1-8. Our results revealed that monosomy and large interstitial deletions within chromosome 7 are the main causes of IKZF1 Δ1-8. Detailed analysis using long distance inverse PCR showed that six patients (16%) had large interstitial deletions starting within intronic regions of COBL at diagnosis, which is ~611 Kb downstream of IKZF1, suggesting that COBL is a hotspot for ΔIKZF1. We also investigated a series of 25 intragenic deletions (Δ2–8, Δ3–8 or Δ4–8) and 24 relapsed samples, and found one IKZF1-COBL tail-to-tail fusion, thus supporting that COBL is a novel hotspot for ΔIKZF1. Finally, using RIC score methodology, we show that breakpoint sequences of IKZF1 Δ1-8 are not analog to RAG-recognition sites, suggesting a different mechanism of error promotion than that suggested for intragenic ΔIKZF1.
The arachidonic acid cascade is a key player in inflammation, and numerous well-established drugs interfere with this pathway. Previous studies have suggested that simultaneous inhibition of 5-lipoxygenase (5-LO) and soluble epoxide hydrolase (sEH) results in synergistic anti-inflammatory effects. In this study, a novel prototype of a dual 5-LO/sEH inhibitor KM55 was rationally designed and synthesized. KM55 was evaluated in enzyme activity assays with recombinant enzymes. Furthermore, activity of KM55 in human whole blood and endothelial cells was investigated. KM55 potently inhibited both enzymes in vitro and attenuated the formation of leukotrienes in human whole blood. KM55 was also tested in a cell function-based assay. The compound significantly inhibited the LPS-induced adhesion of leukocytes to endothelial cells by blocking leukocyte activation.
Die eukaryotische RNA-Polymerase II (RNAPII) ist der zentrale Faktor für die Umsetzung des genetischen Codes in funktionelle Proteine. Durch die Transkription wird die statische Information der DNA in ein transient nutzbares RNA-Molekül umgewandelt. Bei diesem fundamentalen Prozess der Genexpression wird ein spezifischer DNA-Abschnitt des Genoms abgelesen und in die komplementäre RNA transkribiert, die entweder direkt regulatorische bzw. funktionelle Aufgaben in der Zelle übernimmt oder als Matrize für die Proteinbiosynthese dient. Zur Erhaltung der Funktionalität eines Organismus und zur schnellen und gezielten Reaktion auf exogene Reize ist eine strikte Regulation der Transkription und der zahlreichen beteiligten Faktoren notwendig. Aufgrund der zentralen Rolle in der Genexpression ist diese Regulation äußerst vielschichtig und erfordert eine feinabgestimmte Maschinerie an Enzymen und Transkriptionsfaktoren, deren genaue Wirkungsweise und Abhängigkeit noch nicht vollständig verstanden sind. Fehler in der Transkriptionsregulation werden mit einer Reihe von schwerwiegenden metabolischen Störungen und der möglichen malignen Transformation der betroffenen Zelle in Verbindung gebracht.
Während einige Regulationsmechanismen der RNAPII bereits seit längerer Zeit beschrieben sind, ist eine besondere Form der RNAPII-abhängigen Regulation erst in den letzten Jahren Gegenstand genauerer Untersuchungen geworden. So erfährt die RNAPII bei einer Vielzahl von Genen unmittelbar nach der Transkriptionsinitiation einen Arrest, der das Enzym nicht weiter über die DNA prozessieren lässt und somit die produktive Elongation des Gens blockiert. Die Aufhebung dieses promotornahen Arrests wird durch den positiven Transkriptions-Elongationsfaktor b (P-TEFb) dominiert, der durch distinkte post-translationale Modifikationen der C-terminalen Domäne der RNAPII und assoziierter Faktoren den Übergang in die produktive Transkriptionselongation ermöglicht. P-TEFb selbst unterliegt dabei einer strengen Regulation durch die Inkorporation in inhibierende Speicherkomplexe (7SK snRNPs), bestehend aus der 7SK snRNA und mehrerer assoziierter Proteine. Abseits des 7SK snRNP wurde P-TEFb als Bestandteil großer Multiproteinkomplexe identifiziert, die einen positiven Einfluss auf die Transkriptionselongation besitzen. Die Transition von P-TEFb aus dem 7SK snRNP in diese sogenannten Superelongationskomplexe (SECs) stellt einen der zentralen Regulationsmechanismen der eukaryotischen Transkription dar, ist jedoch noch nicht ausreichend verstanden.
Ein zentrales Element aller SECs bilden die Mitglieder der AF4/FMR2-Proteinfamilie, darunter das AF4 Protein, dem neben der Erhaltung der strukturellen Integrität mittlerweile auch eine Funktion in der Rekrutierung von P-TEFb zugeschrieben wird. Dabei scheint AF4 jedoch auf die Hilfe bislang noch nicht charakterisierter Faktoren angewiesen zu sein. AF4 ist über diese Rolle hinaus als Bestandteil des Fusionsproteins AF4-MLL eng mit der onkogenen Zelltransformation im Falle einer durch die Translokation t(4;11)(q21;q23) bedingten, akuten lymphoblastischen Leukämie assoziiert.
Das zentrale Thema dieser Arbeit stellen Untersuchungen zum Transfer von P-TEFb aus dem 7SK snRNP zum AF4-Protein dar. Dabei konnte zunächst die DEAD-Box RNA-Helikase DDX6 als Integraler Bestandteil der AF4-SECs identifiziert werden, der bereits eine Funktion in der Kontrolle des microRNA- wie auch des mRNA-Metabolismus zugeschrieben werden konnte. Aus diesem Grund wurde von uns eine mögliche Beteiligung von DDX6 an der Rekrutierung von P-TEFb zum AF4-SEC durch Modulationen der 7SK snRNA postuliert. Des Weiteren konnte eine Bindefähigkeit von DDX6 gegenüber der 7SK snRNA sowie eine direkte Korrelation zwischen des zellulären DDX6-Proteinlevel und der Akkumulation von P-TEFb im AF4-SEC nachgewiesen werden. Sowohl die Überexpression von DDX6 als auch die von AF4 resultierten in einer gesteigerten mRNA-Produktion, wobei die Ergebnisse auf einen kooperativen Mechanismus zwischen den beiden Proteinen in der Aktivierung der Transkription hindeuteten. Außerdem konnte die These einer DDX6-vermittelten Aktivierung von P-TEFb anhand von Expressionsanalysen des bekannten P-TEFb Zielgens HEXIM1, dessen Expression im Zusammenhang eines negativen Rückkopplungsmechanismus gesteigert wird, bestätigt werden. Damit konnte der DEAD-Box RNA-Helikase DDX6 in dieser Arbeit das erste Mal eine entscheidende Funktion in der Rekrutierung von P-TEFb aus dem 7SK snRNP in den AF4-SEC, und somit an der Kontrolle der eukaryotischen Transkription, zugeschrieben werden.
The p300/CBP‐associated factor (PCAF) and related GCN5 bromodomain‐containing lysine acetyl transferases are members of subfamily I of the bromodomain phylogenetic tree. Iterative cycles of rational inhibitor design and biophysical characterization led to the discovery of the triazolopthalazine‐based L‐45 (dubbed L‐Moses) as the first potent, selective, and cell‐active PCAF bromodomain (Brd) inhibitor. Synthesis from readily available (1R,2S)‐(−)‐norephedrine furnished L‐45 in enantiopure form. L‐45 was shown to disrupt PCAF‐Brd histone H3.3 interaction in cells using a nanoBRET assay, and a co‐crystal structure of L‐45 with the homologous Brd PfGCN5 from Plasmodium falciparum rationalizes the high selectivity for PCAF and GCN5 bromodomains. Compound L‐45 shows no observable cytotoxicity in peripheral blood mononuclear cells (PBMC), good cell‐permeability, and metabolic stability in human and mouse liver microsomes, supporting its potential for in vivo use.
The mitochondrial cascade hypothesis of dementia assumes mitochondrial dysfunction leading to reduced energy supply, impaired neuroplasticity, and finally cell death as one major pathomechanism underlying the continuum from brain aging over mild cognitive impairment to initial and advanced late onset Alzheimer's disease. Accordingly, improving mitochondrial function has become an important strategy to treat the early stages of this continuum. The metabolic enhancer piracetam has been proposed as possible prototype for those compounds by increasing impaired mitochondrial function and related aspects like mechanisms of neuroplasticity. We here report that piracetam at therapeutically relevant concentrations improves neuritogenesis in the human cell line SH-SY5Y over conditions mirroring the whole spectrum of age-associated cognitive decline. These effects go parallel with improvement of impaired mitochondrial dynamics shifting back fission and fusion balance to the energetically more favorable fusion site. Impaired fission and fusion balance can also be induced by a reduction of the mitochondrial permeability transition pore (mPTP) function as atractyloside which indicates the mPTP has similar effects on mitochondrial dynamics. These changes are also reduced by piracetam. These findings suggest the mPTP as an important target for the beneficial effects of piracetam on mitochondrial function.