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Detection of a Circulating MicroRNA Custom Panel in Patients with Metastatic Colorectal Cancer
Published on: March 14, 2019
Noncoding RNA Profile in Reovirus Treated KRAS-Mutated Colorectal Cancer Patients
Rafael Saperstein1, Sanjay Goel2, Radhashree Maitra1
1Department of Biology, Yeshiva University, 500 W 185th St, New York, NY 10033, USA.
Purpose:
To investigate the alterations in the expression of noncoding, micro, and small RNA expression during treatment with oncolytic reovirus in KRAS-mutated colorectal cancer.
Methods:
Oncolytic reovirus treatment was administered in phase 1 clinical trial (NCT01274624) for 5 days every 28 days, and blood samples were collected before the administration of the reovirus and 48 h, 8 days, and 15 days after its administration on day 1. Data from the blood samples were sorted using Transcriptome Analysis Software (TAC) 4.0, where a two-tailed t-test and a fold change filter were used to ascertain which sample signals had a statistically significant relative fold change of greater than 2 at multiple timepoints before or after oncolytic reovirus administration.
Results:
The long noncoding RNA's RP11-332M2.1 (-6.1 x), LINC01506 (-16.18 x), and LINC00534 (-1.94 x) were downregulated at 48 h after reovirus administration [p < 0.05]. ncRNA's EPB41L4A-AS1 (-6.34 x, 48 h; 11.99 x, day 8), JAK2 (2.2 x, 48 h; -2.23 x, day 8), ANXA4 (20.47 x, day 8; -7.54 x, day 15), and PCDH9 (-2.09, day 8; 1.82 x, day 15) were affected by the reovirus treatment and reflected the progress of the treatment [p < 0.05]. The small RNA SNORA26 (-1.59 x, day 8) was downregulated 48 h after the reovirus administration [p < 0.05]. The microRNA MIR-4461 (6.18 x, day 8; -3.76 x, day 15) was also affected by the reovirus administration [p < 0.05].
Conclusion:
The administration of oncolytic reovirus to treat KRAS-mutated colorectal cancer is reflected in a noncoding RNA profile, and expression levels of the ncRNAs in that profile may thus be able to be used as a potential predictive marker for reovirus-treated colorectal cancer.
Insights
Oncolytic reovirus treatment for KRAS-mutated colorectal cancer alters noncoding RNA profiles. These expression changes may serve as predictive biomarkers for treatment response in patients.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Colorectal cancer (CRC) with KRAS mutations presents treatment challenges.
- Oncolytic viruses are emerging as a therapeutic strategy for various cancers.
- Understanding treatment-induced molecular changes is crucial for optimizing therapy.
Purpose of the Study:
- To investigate alterations in noncoding RNA, microRNA, and small RNA expression during oncolytic reovirus treatment in KRAS-mutated colorectal cancer.
- To identify potential noncoding RNA biomarkers associated with reovirus therapy response.
Main Methods:
- A phase 1 clinical trial (NCT01274624) involving oncolytic reovirus administration.
- Blood sample collection at multiple time points before and after reovirus treatment.
- RNA sequencing and bioinformatic analysis using Transcriptome Analysis Software (TAC) 4.0 to identify differentially expressed noncoding RNAs.
Main Results:
- Significant downregulation of long noncoding RNAs (RP11-332M2.1, LINC01506, LINC00534) observed 48 hours post-reovirus administration.
- Dynamic changes in other noncoding RNAs (ncRNAs), including EPB41L4A-AS1, JAK2, ANXA4, and PCDH9, were noted, reflecting treatment progress.
- Alterations in small RNA (SNORA26) and microRNA (MIR-4461) expression were also detected, indicating a broad noncoding RNA response to reovirus therapy.
Conclusions:
- Oncolytic reovirus treatment induces a distinct noncoding RNA expression profile in KRAS-mutated colorectal cancer.
- The identified noncoding RNA signature may serve as a predictive biomarker for patient response to reovirus therapy.
- Further validation of these ncRNA biomarkers could aid in personalized treatment strategies for colorectal cancer.
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