1.Non-canonical vs. Canonical Functions of Heme Oxygenase-1 in Cancer
Achanta Sri Venakata JAGADEESH ; Xizhu FANG ; Seong Hoon KIM ; Yanymee N. GUILLEN-QUISPE ; Jie ZHENG ; Young-Joon SURH ; Su-Jung KIM
Journal of Cancer Prevention 2022;27(1):7-15
Heme oxygenase-1 (HO-1) is a critical stress-responsive enzyme that has antioxidant and anti-inflammatory functions. HO-1 catalyzes heme degradation, which gives rise to the formation of carbon monoxide (CO), biliverdin, and iron. The upregulation of HO-1 under pathological conditions associated with cellular stress represents an important cytoprotective defense mechanism by virtue of the anti-oxidant properties of the bilirubin and the anti-inflammatory effect of the CO produced. The same mechanism is hijacked by premalignant and cancerous cells. In recent years, however, there has been accumulating evidence supporting that the upregulation of HO-1 promotes cancer progression, independently of its catalytic activity. Such non-canonical functions of HO-1 are associated with its interaction with other proteins, particularly transcription factors. HO-1 also undergoes post-translational modifications that influence its stability, functional activity, cellular translocation, etc. HO-1 is normally present in the endoplasmic reticulum, but distinct subcellular localizations, especially in the nucleus, are observed in multiple cancers. The nuclear HO-1 modulates the activation of various transcription factors, which does not appear to be mediated by carbon monoxide and iron. This commentary summarizes the non-canonical functions of HO-1 in the context of cancer growth and progression and underlying regulatory mechanisms.
2.Non-canonical Function of Prolyl Hydroxylase Domain 2in Breast Cancer Cell Growth and Progression: Role of Peptidyl-prolyl Cis-trans Isomerase NIMA-interacting 1
Yanymee N. GUILLEN-QUISPE ; Su-Jung KIM ; Soma SAEIDI ; Gyo-Jin CHOI ; Chaithanya CHELAKKOT ; Tianchi ZHOU ; Sang-Beom BANG ; Tae-Won KIM ; Young Kee SHIN ; Young-Joon SURH
Journal of Cancer Prevention 2025;30(1):56-56
3.Non-canonical Function of Prolyl Hydroxylase Domain 2in Breast Cancer Cell Growth and Progression: Role of Peptidyl-prolyl Cis-trans Isomerase NIMA-interacting 1
Yanymee N. GUILLEN-QUISPE ; Su-Jung KIM ; Soma SAEIDI ; Gyo-Jin CHOI ; Chaithanya CHELAKKOT ; Tianchi ZHOU ; Sang-Beom BANG ; Tae-Won KIM ; Young Kee SHIN ; Young-Joon SURH
Journal of Cancer Prevention 2025;30(1):56-56
4.Non-canonical Function of Prolyl Hydroxylase Domain 2in Breast Cancer Cell Growth and Progression: Role of Peptidyl-prolyl Cis-trans Isomerase NIMA-interacting 1
Yanymee N. GUILLEN-QUISPE ; Su-Jung KIM ; Soma SAEIDI ; Gyo-Jin CHOI ; Chaithanya CHELAKKOT ; Tianchi ZHOU ; Sang-Beom BANG ; Tae-Won KIM ; Young Kee SHIN ; Young-Joon SURH
Journal of Cancer Prevention 2025;30(1):56-56
5.Non-canonical Function of Prolyl Hydroxylase Domain 2in Breast Cancer Cell Growth and Progression: Role of Peptidyl-prolyl Cis-trans Isomerase NIMA-interacting 1
Yanymee N. GUILLEN-QUISPE ; Su-Jung KIM ; Soma SAEIDI ; Gyo-Jin CHOI ; Chaithanya CHELAKKOT ; Tianchi ZHOU ; Sang-Beom BANG ; Tae-Won KIM ; Young Kee SHIN ; Young-Joon SURH
Journal of Cancer Prevention 2024;29(4):129-139
Prolyl hydroxylase domain 2 (PHD2) is the primary oxygen sensing enzyme involved in hydroxylation of hypoxia-inducible factor (HIF). Under normoxic conditions, PHD2 hydroxylates specific proline residues in HIF-1α and HIF-2α, promoting their ubiquitination and subsequent proteasomal degradation. Although PHD2 activity decreases in hypoxia, notable residual activity persists, but its function in these conditions remains unclear. Peptidyl-prolyl cis-trans isomerase NIMA-interacting 1 (Pin1) targets proteins with phosphorylated serine/threonine-proline (pSer/Thr-Pro) motifs. As PHD2 contains several pSer/Thr-Pro motifs, it may be a potential substrate of Pin1. In the present study, we found Pin1 and PHD2 interactions in human breast cancer MDA-MB-231 cells. The breast cancer tissue array revealed higher levels of PHD2 and Pin1 in tumors compared to adjacent normal tissues. Through liquid chromatography-tandem mass spectrometry spectrometry, three phosphorylation sites (S125, T168, and S174) on PHD2 were identified, with serine 125 as the main site for Pin1 binding. As a new Pin1 binding partner, oncogenic PHD2 could be a potential therapeutic target for breast cancer treatment.
6.Non-canonical Function of Prolyl Hydroxylase Domain 2in Breast Cancer Cell Growth and Progression: Role of Peptidyl-prolyl Cis-trans Isomerase NIMA-interacting 1
Yanymee N. GUILLEN-QUISPE ; Su-Jung KIM ; Soma SAEIDI ; Gyo-Jin CHOI ; Chaithanya CHELAKKOT ; Tianchi ZHOU ; Sang-Beom BANG ; Tae-Won KIM ; Young Kee SHIN ; Young-Joon SURH
Journal of Cancer Prevention 2024;29(4):129-139
Prolyl hydroxylase domain 2 (PHD2) is the primary oxygen sensing enzyme involved in hydroxylation of hypoxia-inducible factor (HIF). Under normoxic conditions, PHD2 hydroxylates specific proline residues in HIF-1α and HIF-2α, promoting their ubiquitination and subsequent proteasomal degradation. Although PHD2 activity decreases in hypoxia, notable residual activity persists, but its function in these conditions remains unclear. Peptidyl-prolyl cis-trans isomerase NIMA-interacting 1 (Pin1) targets proteins with phosphorylated serine/threonine-proline (pSer/Thr-Pro) motifs. As PHD2 contains several pSer/Thr-Pro motifs, it may be a potential substrate of Pin1. In the present study, we found Pin1 and PHD2 interactions in human breast cancer MDA-MB-231 cells. The breast cancer tissue array revealed higher levels of PHD2 and Pin1 in tumors compared to adjacent normal tissues. Through liquid chromatography-tandem mass spectrometry spectrometry, three phosphorylation sites (S125, T168, and S174) on PHD2 were identified, with serine 125 as the main site for Pin1 binding. As a new Pin1 binding partner, oncogenic PHD2 could be a potential therapeutic target for breast cancer treatment.
7.Non-canonical Function of Prolyl Hydroxylase Domain 2in Breast Cancer Cell Growth and Progression: Role of Peptidyl-prolyl Cis-trans Isomerase NIMA-interacting 1
Yanymee N. GUILLEN-QUISPE ; Su-Jung KIM ; Soma SAEIDI ; Gyo-Jin CHOI ; Chaithanya CHELAKKOT ; Tianchi ZHOU ; Sang-Beom BANG ; Tae-Won KIM ; Young Kee SHIN ; Young-Joon SURH
Journal of Cancer Prevention 2024;29(4):129-139
Prolyl hydroxylase domain 2 (PHD2) is the primary oxygen sensing enzyme involved in hydroxylation of hypoxia-inducible factor (HIF). Under normoxic conditions, PHD2 hydroxylates specific proline residues in HIF-1α and HIF-2α, promoting their ubiquitination and subsequent proteasomal degradation. Although PHD2 activity decreases in hypoxia, notable residual activity persists, but its function in these conditions remains unclear. Peptidyl-prolyl cis-trans isomerase NIMA-interacting 1 (Pin1) targets proteins with phosphorylated serine/threonine-proline (pSer/Thr-Pro) motifs. As PHD2 contains several pSer/Thr-Pro motifs, it may be a potential substrate of Pin1. In the present study, we found Pin1 and PHD2 interactions in human breast cancer MDA-MB-231 cells. The breast cancer tissue array revealed higher levels of PHD2 and Pin1 in tumors compared to adjacent normal tissues. Through liquid chromatography-tandem mass spectrometry spectrometry, three phosphorylation sites (S125, T168, and S174) on PHD2 were identified, with serine 125 as the main site for Pin1 binding. As a new Pin1 binding partner, oncogenic PHD2 could be a potential therapeutic target for breast cancer treatment.