5 research outputs found
Investigating Polypharmacology through Targeting Known Human Neutrophil Elastase Inhibitors to Proteinase 3
Using a combination of multisite 位鈭抎ynamics
(MS位D)
together with in vitro IC50 assays, we
evaluated the polypharmacological potential of a scaffold currently
in clinical trials for inhibition of human neutrophil elastase (HNE),
targeting cardiopulmonary disease, for efficacious inhibition of Proteinase
3 (PR3), a related neutrophil serine proteinase. The affinities we
observe suggest that the dihydropyrimidinone scaffold can serve as
a suitable starting point for the establishment of polypharmacologically
targeting both enzymes and enhancing the potential for treatments
addressing diseases like chronic obstructive pulmonary disease
Investigating Polypharmacology through Targeting Known Human Neutrophil Elastase Inhibitors to Proteinase 3
Using a combination of multisite 位鈭抎ynamics
(MS位D)
together with in vitro IC50 assays, we
evaluated the polypharmacological potential of a scaffold currently
in clinical trials for inhibition of human neutrophil elastase (HNE),
targeting cardiopulmonary disease, for efficacious inhibition of Proteinase
3 (PR3), a related neutrophil serine proteinase. The affinities we
observe suggest that the dihydropyrimidinone scaffold can serve as
a suitable starting point for the establishment of polypharmacologically
targeting both enzymes and enhancing the potential for treatments
addressing diseases like chronic obstructive pulmonary disease
Probing p300/CBP Associated Factor (PCAF)-Dependent Pathways with a Small Molecule Inhibitor
PCAF
(KAT2B) belongs to the GNAT family of lysine acetyltransferases
(KAT) and specifically acetylates the histone H3K9 residue and several
nonhistone proteins. PCAF is also a transcriptional coactivator. Due
to the lack of a PCAF KAT-specific small molecule inhibitor, the exclusive
role of the acetyltransferase activity of PCAF is not well understood.
Here, we report that a natural compound of the hydroxybenzoquinone
class, embelin, specifically inhibits H3Lys9 acetylation in mice and
inhibits recombinant PCAF-mediated acetylation with near complete
specificity <i>in vitro</i>. Furthermore, using embelin,
we have identified the gene networks that are regulated by PCAF during
muscle differentiation, further highlighting the broader regulatory
functions of PCAF in muscle differentiation in addition to the regulation
via MyoD acetylation
Probing p300/CBP Associated Factor (PCAF)-Dependent Pathways with a Small Molecule Inhibitor
PCAF
(KAT2B) belongs to the GNAT family of lysine acetyltransferases
(KAT) and specifically acetylates the histone H3K9 residue and several
nonhistone proteins. PCAF is also a transcriptional coactivator. Due
to the lack of a PCAF KAT-specific small molecule inhibitor, the exclusive
role of the acetyltransferase activity of PCAF is not well understood.
Here, we report that a natural compound of the hydroxybenzoquinone
class, embelin, specifically inhibits H3Lys9 acetylation in mice and
inhibits recombinant PCAF-mediated acetylation with near complete
specificity <i>in vitro</i>. Furthermore, using embelin,
we have identified the gene networks that are regulated by PCAF during
muscle differentiation, further highlighting the broader regulatory
functions of PCAF in muscle differentiation in addition to the regulation
via MyoD acetylation
Probing p300/CBP Associated Factor (PCAF)-Dependent Pathways with a Small Molecule Inhibitor
PCAF
(KAT2B) belongs to the GNAT family of lysine acetyltransferases
(KAT) and specifically acetylates the histone H3K9 residue and several
nonhistone proteins. PCAF is also a transcriptional coactivator. Due
to the lack of a PCAF KAT-specific small molecule inhibitor, the exclusive
role of the acetyltransferase activity of PCAF is not well understood.
Here, we report that a natural compound of the hydroxybenzoquinone
class, embelin, specifically inhibits H3Lys9 acetylation in mice and
inhibits recombinant PCAF-mediated acetylation with near complete
specificity <i>in vitro</i>. Furthermore, using embelin,
we have identified the gene networks that are regulated by PCAF during
muscle differentiation, further highlighting the broader regulatory
functions of PCAF in muscle differentiation in addition to the regulation
via MyoD acetylation