1.Validation of new TRUS biopsy techniques for PI-RADS 4 or 5
Precision and Future Medicine 2020;4(4):141-148
Purpose:
Recently, new magnetic resonance imaging (MRI)-transrectal ultrasound (TRUS) techniques and imaging features of Prostate Imaging and Report and Data System (PI-RADS) 4 or 5 have been reported. The aim of this study was to validate the outcomes of new TRUS-guided biopsy techniques for cancer detection in patients with PI-RADS 4 or 5.
Methods:
Between June 2018 and November 2018, 94 men underwent TRUS-guided biopsy after PI-RADS 4 (n= 59) or 5 (n= 35) was categorized as an index lesion on MRI. For PI-RADS 4 group, target biopsy was performed in 5 and combination biopsy (target and systematic biopsies) was in 54. For PI-RADS 5 group, target biopsy was performed in 19 and combination biopsy was in 16. Target to combination biopsy ratios and significant cancer detection rates (CDRs) were compared between the groups. Significant cancer was defined as a Gleason score ≥ 7 tumor. Standard reference was biopsy examination. Fisher’s exact were used for statistical analysis.
Results:
Target to combination biopsy ratios was 5:54 in the PI-RADS 4 group and 19:16 in the PI-RADS 5 group (P< 0.0001). The significant CDR of the target biopsy were 42.4% (25/59) in the PI-RADS 4 group and 82.6% (29/35) in the PI-RADS 5 group (P= 0.0002). The significant CDR of combination biopsy was 44.1% (26/59) in the PI-RADS 4 group and 85.7% (30/35) in the PI-RADS 5 group (P< 0.0001).
Conclusion
New TRUS biopsy techniques provides high significant CDR patients with PI-RADS 4 or 5. Therefore, TRUS should be performed prior to fusion or in-bore biopsy to determine if these categories are visible.
2.Value of systematic biopsy added to target biopsy for detecting significant cancer in men with Prostate Imaging and Reporting and Data System 5
Precision and Future Medicine 2020;4(3):107-113
Purpose:
To assess the value of systematic biopsy added to target biopsy for detecting significant cancer in men with Prostate Imaging and Reporting and Data System 5 (PI-RADS 5).
Methods:
Between March 2014 and November 2018, 186 men had a PI-RADS 5 categorized as an index lesion on magnetic resonance imaging prior to transrectal ultrasound (TRUS)-guided biopsy. Of these patients, 135 (group I) underwent target biopsy alone because of good depiction. The remaining 51 (group II) underwent target and systematic biopsies because of poor depiction. Significant cancer detection rates (CDRs) were compared between the groups. Which type of biopsies contributed to detecting significant cancer was evaluated in the group II.
Results:
Significant CDRs of the target biopsy were 67.4% (91/135) in the group I and 47.1% (24/51) in the group II (P=0.0173). However, when systematic biopsy was added to target biopsy, the significant CDR of the group II increased to 52.9% (27/51) (P=0.0900). Of the 27 significant cancers missed by target biopsy in the group II, three were detected by systematic biopsy alone. Moreover, systematic biopsy detected higher Gleason scores in two cases than target biopsy.
Conclusion
Systematic biopsy contributes to detecting additional significant cancers in men with PI-RADS 5 partially visible on TRUS.
3.Expression of Inducible Nitric Oxide Synthase and Nitric Oxide Mediated Apoptosis in Neuronal PC12 Cells after Lipopolysaccharide/Tumor Necrosis Factor-/Interferon- Treatment.
Jiyeon KIM ; Jiyoung KIM ; Kuseong KANG ; Eunkyoung KWAK ; Jiyoung PARK ; Taein PARK ; Yoonkyung SOHN
Korean Journal of Pathology 2002;36(4):249-256
BACKGROUND: Inducible nitric oxide synthase (iNOS) has been detected in a number of pathologic conditions in the central nervous system. This study was investigated the patterns of iNOS expression in the neuronal PC12 cell and the effects of nitric oxide on the apoptosis of PC12 cells. METHODS: The stimulating agents for induction of iNOS expression in PC12 cells were bacterial lipopolysaccharide (LPS), tumor necrosis factor-alpha (TNF-), and interferon-gamma (IFN-). RESULTS: The expression iNOS mRNA and protein in PC12 cells stimulated with LPS/TNF-/IFN- were profoundly increased. The expression of iNOS mRNA arose at 6 hours, peaked at 12 hours, and declined to 48 hours after LPS/TNF-/ IFN- treatment. iNOS protein was increased up to 24 hours in LPS/TNF-/IFN- treated PC12 cells while the expression of nNOS was unaffected. Accumulation of NO derivatives in the culture media was markedly increased at least at up to 48 hours after LPS/TNF-/IFN- treatment. The induction of iNOS expression and NO production in differentiated PC12 cells was correlated with apoptotic cell death judged by transmission electron microscopy and DNA fragmentation from the results of the Terminal deoxynucleotidyl-transferase-mediated dUDP biotin nick end-labeling (TUNEL) method. After treatment with NOS inhibitor, N-monomethylarginine (NMMA), a profound decrease in NO production by LPS/TNF-/IFN- treated PC12 cells was noted. And the LPS/TNF-/IFN- induced apoptosis was prevented by the NMMA treatment. CONCLUSIONS: From the above results it is concluded that the expression of iNOS in differentiated PC12 cells is induced by the combined application of LPS, TNF-, and IFN-. And the apoptosis of cultured PC12 cells is mediated by iNOS-derived NO.
Animals
;
Apoptosis*
;
Biotin
;
Cell Death
;
Central Nervous System
;
Culture Media
;
DNA Fragmentation
;
Interferon-gamma
;
Microscopy, Electron, Transmission
;
Necrosis*
;
Neurons*
;
Nitric Oxide Synthase Type II*
;
Nitric Oxide*
;
PC12 Cells*
;
RNA, Messenger
;
Tumor Necrosis Factor-alpha
4.Distribution of Free Radicals in Reperfusion Injury after Transient Brain Ischemia.
Eunkyoung KWAK ; Hyungho SUH ; Jiyoung PARK ; Yunsup KUM ; Taein PARK ; Jungwan KIM ; Yoonkyung SOHN
Korean Journal of Pathology 2000;34(11):893-900
Free radicals are known as an important factor which may act on reperfusion injury after transient or permanent brain ischemia. Numerous studies about cytotoxic function of free radical have been done. Most of these studies demonstrate the function of free radical in reperfusion injury by using radical scavenger or antioxidant as inhibitor of radicals. We used a modification of Karnovsky's Mn2 /diaminobenzidine (DAB) technique to demonstrate intravascular free radicals following transient occlusion and reperfusion of one middle cerebral artery in Sprague-Dawley rats. The MCA was occluded for 2 hours using an intraluminal suture method. The reperfusion time after transient ischemia was 1 hour, 6 hours, and 24 hours, respectively. Animals were perfused transcardially with solution containing Mn2 and DAB. After DAB perfusion, the brains were removed promptly, sectioned in frozen, and stained with methylene blue for light microscopic examination. Upon light microscopic examination, free radicals were confined within intravascular lumen and the amount of deposits increased according to the duration of reperfusion. Upon electron microscopic examination, free radicals were located in nuclear membrane and membrane of mitochondria and RER, and demonstrated as electron dense deposits. In addition, cell processes of the neuron revealed an electron dense deposits beneath the inner side of the membrane. In conclusion, free radicals demonstrated in the reperfusion injury area indicate that free radical acts as an important cytotoxic factor. Intracellular localization of free radicals may explain the relationship between free radical and delayed neuronal injury.
Animals
;
Brain Ischemia*
;
Brain*
;
Free Radicals*
;
Ischemia
;
Membranes
;
Methylene Blue
;
Middle Cerebral Artery
;
Mitochondria
;
Neurons
;
Nuclear Envelope
;
Perfusion
;
Rats, Sprague-Dawley
;
Reperfusion Injury*
;
Reperfusion*
;
Sutures

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