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PXD061927

PXD061927 is an original dataset announced via ProteomeXchange.

Dataset Summary
TitleDeciphering PTM Crosstalk on Hsp90: Integrating Deep Learning for Drug Sensitivity Prediction
DescriptionPost-translational modification (PTM) of proteins regulates cellular proteostasis by expanding protein functional diversity. This naturally leads to increased proteome complexity as the result of PTM crosstalk. Here, we used a heavily modified molecular chaperone, Heat shock protein-90 (Hsp90), to investigate this concept. Hsp90 is at the hub of proteostasis and cellular signaling networks in cancer and is, therefore, an attractive therapeutic target in cancer. We showed that deletion of HDAC3 and HDAC8 in human cells led to increased binding of Hsp90 to both ATP and drugs. When bound to its ATP-competitive inhibitor, Hsp90 from both HDAC3 and HDAC8 knock out human cells exhibited similar PTMs, mainly phosphorylation and acetylation, and created a common proteomic network signature. We used both a deep-learning artificial intelligence (AI) prediction model and data based on mass-spectrometry analysis of Hsp90 isolated from the mammalian cells bound to its drugs to decipher PTM crosstalk. The alignment of data from both methods demonstrates that the deep-learning prediction model offers a highly efficient and rapid approach for deciphering PTM crosstalk on complex proteins such as Hsp90.
HostingRepositoryPRIDE
AnnounceDate2025-09-08
AnnouncementXMLSubmission_2025-09-07_16:05:38.231.xml
DigitalObjectIdentifier
ReviewLevelPeer-reviewed dataset
DatasetOriginOriginal dataset
RepositorySupportUnsupported dataset by repository
PrimarySubmitterSarah Backe
SpeciesList scientific name: Homo sapiens (Human); NCBI TaxID: 9606;
ModificationListNo PTMs are included in the dataset
InstrumentOrbitrap Fusion Lumos
Dataset History
RevisionDatetimeStatusChangeLog Entry
02025-03-17 08:40:31ID requested
12025-09-07 16:05:39announced
Publication List
10.1016/j.jbc.2025.110519;
Heritz JA, Meluni KA, Backe SJ, Cayaban SJ, Wengert LA, Kunz M, Woodford MR, Bourboulia D, Mollapour M, Integrating deep learning for post-translational modifications crosstalk on Hsp90 and drug binding. J Biol Chem, 301(9):110519(2025) [pubmed]
Keyword List
submitter keyword: Hsp90, AI, Ganetespib, Deep learning, HDAC, Acetylation, Phosphorylation
Contact List
Mehdi Mollapour
contact affiliation1 Department of Urology, 2 Upstate Cancer Center, 3 Department of Biochemistry and Molecular Biology, SUNY Upstate Medical University, 750 E. Adams St., Syracuse, NY 13210, USA
contact emailmollapom@uptate.edu
lab head
Sarah Backe
contact affiliationSUNY Upstate Medical University
contact emailbackes@upstate.edu
dataset submitter
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Dataset FTP location
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Repository Record List
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