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Oncotarget, ISSN 1949-2553, 05/2018, Volume 9, Issue 38, pp. 25101 - 25114
Combination of suberoylanilide hydroxamic acid (SAHA) and bortezomib (SAHA/bortezomib) was shown to synergistically induce killing of lymphoblastoid cell lines... 
EBNA3 | SAHA | Lymphoproliferative disease | Epstein-Barr virus | Bortezomib
Journal Article
Oncotarget, ISSN 1949-2553, 2016, Volume 7, Issue 4, pp. 4454 - 4467
Journal Article
International Journal of Cancer, ISSN 0020-7136, 01/2016, Volume 138, Issue 1, pp. 125 - 136
Pan‐histone deacetylase (HDAC) inhibitors, which inhibit 11 HDAC isoforms, are widely used to induce Epstein‐Barr virus (EBV) lytic cycle in EBV‐associated... 
epithelial cancer | lytic cycle | Epstein-Barr virus | romidepsin | histone deacetylase inhibitor | Epstein‐Barr virus | APOPTOSIS | PROTEIN-KINASE-C | ACTIVATION | NASOPHARYNGEAL CARCINOMA-CELLS | REPLICATION | EPITHELIAL-CELLS | ONCOLOGY | REACTIVATION | LATENCY | EXPRESSION | GENE-PRODUCT | Nasopharyngeal Neoplasms - metabolism | Carcinoma | Epithelial Cells - metabolism | Ataxia Telangiectasia Mutated Proteins - metabolism | Epithelial Cells - drug effects | Humans | Herpesvirus 4, Human - drug effects | Nasopharyngeal Neoplasms - virology | Stomach Neoplasms - metabolism | Stomach Neoplasms - pathology | Depsipeptides - pharmacology | Nasopharyngeal Neoplasms - pathology | Dose-Response Relationship, Drug | Cyclin-Dependent Kinase Inhibitor p21 - metabolism | Ganciclovir - pharmacology | Acetylation | Cell Death - drug effects | Nasopharyngeal Neoplasms - drug therapy | Disease Models, Animal | Cell Line | Virus Replication - drug effects | Antiviral Agents - pharmacology | Nasopharyngeal Carcinoma | Disease Susceptibility | Histone Deacetylases - genetics | Stomach Neoplasms - virology | Herpesvirus 4, Human - physiology | Histone Deacetylases - metabolism | Stomach Neoplasms - drug therapy | Protein Kinase C-delta - metabolism | Xenograft Model Antitumor Assays | Animals | MAP Kinase Signaling System - drug effects | Virus Activation - drug effects | Signal Transduction - drug effects | Epithelial Cells - virology | Histone Deacetylase Inhibitors - pharmacology | Cell Proliferation - drug effects | Mice | Histones - metabolism | Ganciclovir | Automated teller machines | Biochemistry | Cell death | Drug approval | Kinases | Genes | Apoptosis
Journal Article
Cancer Investigation, ISSN 0735-7907, 08/2008, Volume 26, Issue 7, pp. 708 - 717
Farnesol (FOH) and geranylgeraniol (GGOH) possess anti-tumor potential, while peroxisome proliferator-activated receptor γ (PPARγ) has exhibited modulating... 
HCT116 cells | GW9662 | HT-29 cells | GGOH | FOH | PPARγ
Journal Article
Cancer Investigation, ISSN 0735-7907, 2008, Volume 26, Issue 7, pp. 708 - 717
Farnesol (FOH) and geranylgeraniol (GGOH) possess anti-tumor potential, while peroxisome proliferator-activated receptor γ (PPARγ) has exhibited modulating... 
GGOH | HCT116 cells | GW9662 | FOH | PPARγ | HT-29 cells | PATHWAYS | GROWTH-INHIBITION | RECEPTOR-GAMMA | TUMOR-CELLS | FLUOROURACIL | PPAR gamma | THERAPY | ONCOLOGY | COLORECTAL-CANCER | GERANYLGERANIOL | EXPRESSION | PEROXISOME
Journal Article
Hepatology, ISSN 0270-9139, 08/2015, Volume 62, Issue 2, pp. 375 - 386
Journal Article
PLoS ONE, ISSN 1932-6203, 11/2016, Volume 11, Issue 11, p. e0165438
Aims Butyric acid is one major metabolic product generated by anaerobic Gram-negative bacteria of periodontal and root canal infection. Butyric acid affects... 
CANCER-CELLS | APOPTOSIS | HUMAN GINGIVAL FIBROBLASTS | PERIODONTAL-DISEASES | ORAL KERATINOCYTES | MULTIDISCIPLINARY SCIENCES | SODIUM-BUTYRATE | CREVICULAR FLUID | DNA-DAMAGE | CARBOXYLIC-ACID CONCENTRATION | DENTAL-PULP CELLS | Cell Cycle - genetics | Cell Line | Cell Survival - drug effects | Collagen Type I - metabolism | Reactive Oxygen Species - metabolism | Humans | Osteoblasts - drug effects | Cyclin B1 - metabolism | Gene Expression Regulation - drug effects | Osteoblasts - pathology | Butyric Acid - metabolism | Cyclin-Dependent Kinase Inhibitor p21 - metabolism | Butyric Acid - pharmacology | Cell Proliferation - drug effects | Cell Cycle - drug effects | Osteoblasts - metabolism | Physiological aspects | Research | Gene expression | Osteoblasts | Collagen | Cell cycle | Cell proliferation | Cdc2 protein | Flow cytometry | Collagen (type I) | Pathogenesis | Collagens | Fluorescence | Kinases | Cyclin B1 | Western blotting | Butyric acid | Cell adhesion & migration | Proteins | Signal transduction | Microorganisms | Bone growth | Cell growth | Fibroblasts | Biocompatibility | Gram-negative bacteria | Bone matrix | Cellular manufacture | Periodontics | Secretion | Exposure | Bone healing | Dentistry | Polymerase chain reaction | Cytometry | Hospitals | Acids | Sodium | Root canals | Bone | Viability | Apoptosis
Journal Article
The New England Journal of Medicine, ISSN 0028-4793, 01/2014, Volume 370, Issue 2, pp. 119 - 128
Journal Article
by Thomas, Hannah S and Weiser, Thomas G and Drake, Thomas M and Knight, Stephen R and Fairfield, Cameron and Ademuyiwa, Adesoji O and Aguilera, Maria Lorena and Alexander, Philip and Al‐Saqqa, Sara W and Borda‐Luque, Giuliano and Costas‐Chavarri, Ainhoa and Ntirenganya, Faustin and Fitzgerald, J Edward and Fergusson, Stuart J and Glasbey, James and Ingabire, J.C. Allen and Ismaïl, Lawani and Salem, Hosni Khairy and Kojo, Anyomih Theophilus Teddy and Lapitan, Marie Carmela and Lilford, Richard and Mihaljevic, Andre L and Morton, Dion and Mutabazi, Alphonse Zeta and Nepogodiev, Dmitri and Adisa, Adewale O and Ots, Riinu and Pata, Francesco and Pinkney, Thomas and Poškus, Tomas and Qureshi, Ahmad Uzair and Medina, Antonio Ramos‐De and Rayne, Sarah and Shaw, Catherine A and Shu, Sebastian and Spence, Richard and Smart, Neil and Tabiri, Stephen and Bhangu, Aneel and Harrison, Ewen M and Harrison, Ewen M and Verjee, Azmina and Runigamugabo, Emmy and Ademuyiwa, Adesoji O and Adisa, Adewale O and Aguilera, Maria Lorena and Altamini, Afnan and Alexander, Philip and Al‐Saqqa, Sara W and Borda‐Luque, Giuliano and Cornick, Jen and Costas‐Chavarri, Ainhoa and Drake, Thomas M and Fergusson, Stuart J and Fitzgerald, J Edward and Glasbey, James and Ingabire, J.C. Allen and Ismaïl, Lawani and Jaffry, Zahra and Salem, Hosni Khairy and Khatri, Chetan and Kirby, Andrew and Kojo, Anyomih Theophilus Teddy and Lapitan, Marie Carmela and Lilford, Richard and Mihaljevic, Andre L and Mohan, Midhun and Morton, Dion and Mutabazi, Alphonse Zeta and Nepogodiev, Dmitri and Ntirenganya, Faustin and Ots, Riinu and Pata, Francesco and Pinkney, Thomas and Poškus, Tomas and Qureshi, Ahmad Uzair and Medina, Antonio Ramos‐De and Rayne, Sarah and Recinos, Gustavo and Søreide, Kjetil and Shaw, Catherine A and Shu, Sebastian and Spence, Richard and Smart, Neil and Tabiri, Stephen and Harrison, Ewen M and Bhangu, Aneel and Khatri, Chetan and Gobin, Neel and Freitas, Ana Vega and Hall, Nigel and Kim, Sung‐Hee and Negida, Ahmed and Khairy, Hosni and Jaffry, Zahra and Chapman, Stephen J and Arnaud, Alexis P and Tabiri, Stephen and Recinos, Gustavo and Manipal, Cutting Edge and ... and GlobalSurg Collaborative and Medicinska fakulteten and Enheten för biobanksforskning and Institutionen för kirurgisk och perioperativ vetenskap and Umeå universitet
British Journal of Surgery, ISSN 0007-1323, 01/2019, Volume 106, Issue 2, pp. e103 - e112
Journal Article