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Alteration of the exDNA profile in blood serum of LLC-bearing mice under the decrease of tumour invasion potential by
Ludmila A Alekseeva1, Nadezhda L Mironova1, Evgenyi V Brenner1
1Institute of Chemical Biology and Fundamental Medicine, SB RAS, Novosibirsk, Russia.
Abstract:
Taking into account recently obtained data indicating the participation of circulating extracellular DNA (exDNA) in tumorigenesis, enzymes with deoxyribonucleic activity have again been considered as potential antitumour and antimetastatic drugs. Previously, using murine Lewis lung carcinoma and hepatocellular carcinoma A1 tumour models, we have shown the antimetastatic activity of bovine DNase I, which correlates with an increase of DNase activity and a decrease of exDNA concentration in the blood serum of tumour-bearing mice. In this work, using next-generation sequencing on the ABS SOLiD™ 5.500 platform, we performed a search for molecular targets of DNase I by comparing the exDNA profiles of healthy animals, untreated animals with Lewis lung carcinoma (LLC) and those with LLC treated with DNase I. We found that upon DNase I treatment of LLC-bearing mice, together with inhibition of metastasis, a number of strong alterations in the patterns of exDNA were observed. The major differences in exDNA profiles between groups were: i) the level of GC-poor sequences increased during tumour development was reduced to that of healthy mice; ii) levels of sequences corresponding to tumour-associated genes Hmga2, Myc and Jun were reduced in the DNase I-treated group in comparison with non-treated mice; iii) 224 types of tandem repeat over-presented in untreated LLC-bearing mice were significantly reduced after DNase I treatment. The most important result obtained in the work is that DNase I decreased the level of B-subfamily repeats having homology to human ALU repeats, known as markers of carcinogenesis, to the level of healthy animals. Thus, the obtained data lead us to suppose that circulating exDNA plays a role in tumour dissemination, and alteration of multiple molecular targets in the bloodstream by DNase I reduces the invasive potential of tumours.
Insights
Bovine deoxyribonuclease I (DNase I) treatment reduced circulating extracellular DNA (exDNA) and inhibited metastasis in Lewis lung carcinoma (LLC) models. DNase I altered exDNA profiles, decreasing oncogenic sequences and reducing tumor dissemination potential.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Circulating extracellular DNA (exDNA) is increasingly implicated in tumorigenesis.
- Bovine deoxyribonuclease I (DNase I) has demonstrated antimetastatic activity in preclinical tumor models.
- Previous studies showed DNase I treatment correlated with increased serum DNase activity and decreased exDNA in tumor-bearing mice.
Purpose of the Study:
- To identify molecular targets of DNase I in circulating exDNA.
- To investigate the impact of DNase I treatment on exDNA profiles in a Lewis lung carcinoma (LLC) model.
- To elucidate the role of exDNA alterations in tumor dissemination and the antimetastatic effects of DNase I.
Main Methods:
- Employed next-generation sequencing (ABS SOLiD™ 5.500 platform) to analyze exDNA profiles.
- Compared exDNA patterns from healthy mice, untreated LLC-bearing mice, and LLC-bearing mice treated with DNase I.
- Quantified changes in GC-poor sequences, tumor-associated gene sequences (Hmga2, Myc, Jun), and tandem repeats.
Main Results:
- DNase I treatment significantly altered exDNA profiles in LLC-bearing mice, correlating with inhibited metastasis.
- Reduced levels of GC-poor sequences, tumor-associated gene sequences (Hmga2, Myc, Jun), and specific tandem repeats were observed post-treatment.
- DNase I effectively decreased B-subfamily repeats, homologous to human ALU repeats (carcinogenesis markers), to levels found in healthy animals.
Conclusions:
- Circulating exDNA plays a significant role in tumor dissemination.
- DNase I alters multiple molecular targets within the bloodstream.
- The observed alterations in exDNA profiles by DNase I contribute to reducing the invasive potential of tumors.
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