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<dc:title>Estudio de la capacidad terapeútica de las vesículas extracelulares procedentes de células estromales mesenquimales de la médula ósea sobre la cardiotoxicidad inducida por doxorubicina</dc:title>
<dc:creator>Rico Sorlí, Ana</dc:creator>
<uketdterms:advisor>Sánchez-Guijo Martín, Fermín</uketdterms:advisor>
<uketdterms:advisor>Muntión Olave, María Sandra</uketdterms:advisor>
<uketdterms:advisor>Preciado Pérez, Silvia</uketdterms:advisor>
<dcterms:abstract>[EN] Background&#xd;
The use of anthracyclines increases the survival of some cancer patients, but at the same time it&#xd;
may also promote type I cardiotoxicity in some of them (1). Doxorubicin (dox) is one of the most&#xd;
used anthracyclines to treat a wide range of cancer types (2). Its mechanisms of action in the&#xd;
myocardium include the generation of oxygen reactive species (ROS), the alteration in&#xd;
mitochondrial function, the deregulation of calcium homeostasis and energy generation and the&#xd;
inhibition of topoisomerase II. In addition, its binding to DNA causes the alteration of gene&#xd;
expression and the synthesis of RNA and proteins, which ultimately cause apoptosis, loss of&#xd;
functional cardiomyocytes and irreversible myocardial damage.&#xd;
Currently, treatments to prevent or revert the damage caused by dox are not effective. So, as&#xd;
an alternative, cell therapy with stem cells is one of the areas of greatest scientific interest for its&#xd;
potential use in diseases, especially in those without effective treatment to date (3, 4). MSC exert&#xd;
&#xd;
their regenerative, anti-inflammatory and immunomodulatory effects not only through direct cell-&#xd;
to-cell contact, but also secreting exosomes and microvesicles named as extracellular vesicles&#xd;
&#xd;
(EV), which have a size ranging from 30 nm to 1 μm, that are capable of transferring biological&#xd;
molecules to neighbouring and distant cells and exert regulatory effects on them (5-8). Therefore,&#xd;
EV could have a potential therapeutic use in cell therapy programs.&#xd;
Hypothesis and objectives&#xd;
With this background, we wanted to develop an in vitro model of doxorubicin-induced acute&#xd;
myocardial damage (as the most paradigmatic cardiotoxic agent) establishing accurate biological&#xd;
variables that let us evaluate the therapeutic or preventive potential in a reliable way that, on this&#xd;
damage, extracellular vesicles derived from mesenchymal stem cells (MSC-EV) from the bone&#xd;
marrow of healthy donors may exert, after their eventual incorporation, and that allow us to&#xd;
analyse which key mechanisms of this potential beneficial effect could be.&#xd;
To analyse the therapeutic effect of bone marrow MSC-EV from healthy donors on&#xd;
cardiomyocytes in an in vitro model of doxorubicin-induced cardiotoxicity. More specifically we&#xd;
wanted to develop and establish an in vitro model of doxorubicin-induced cardiotoxicity and to&#xd;
evaluate if human bone marrow MSC-EV from healthy donors are able to incorporate into murine&#xd;
cardiomyocytes and to analyze the incorporation rate. Finally, we assessed the effects of EV&#xd;
incorporation into cardiomyocytes damaged by doxorubicin (comparing with control&#xd;
cardiomyocytes) and the mechanisms by which these effects could be induced.&#xd;
Methodology&#xd;
To identify and characterize murine cardiomyocytes (CM) from 1-3-day old C57/BL6 neonatal&#xd;
mice, hearts were removed and the ventricles digested with collagenase II to isolate and culture the cardiomyocytes. First, we tested the cardiomyocyte purity within the ventricle’s cell&#xd;
population at 24 hours in culture by flow cytometry (FC) with the specific antibodies for&#xd;
cardiomyocytes: anti-a-actinin, anti-troponin T and anti-CD309 (VEGFR-2), and with 7-AAD to&#xd;
evaluate their viability. We also identified murine primary cardiomyocytes by&#xd;
immunofluorescence (IF) labeling them with a-actinin.&#xd;
In order to establish the in vitro model of doxorubicin-induced damage, we performed studies&#xd;
of time-dependent response with 1 μM of doxorubicin in which we evaluated cell viability in&#xd;
order to test the differential response to different times (1, 3, 6, 12 and 24 hours) and thus be able&#xd;
to select the time in which the viability decreases to perform the subsequent co-culture&#xd;
experiments with extracellular vesicles. The release of cardiac troponin T (cTnT), as a biomarker&#xd;
of acute cardiac damage (9), into the culture medium by cardiomyocytes treated with 1 μM of&#xd;
doxorubicin was evaluated after 1, 3, 6, 12- and 24-hours post-treatment. We also evaluated the&#xd;
pulsations of primary cardiomyocytes after 24 hours of treatment.&#xd;
For the characterization and incorporation of MSC-EV into murine primary cardiomyocytes,&#xd;
MSC from 20 healthy donors were isolated from bone marrow and expanded until culture passage&#xd;
6. MSC were characterised analysing by FC different antibodies: CD73, CD90, CD105, CD44,&#xd;
CD166, CD14, CD19, CD34, CD45 and HLA-DR. Their in vitro differentiation capability to&#xd;
adipocytes and osteoblasts was also evaluated in passage 3.&#xd;
We purified the EV-MSC from healthy donors released into the culture medium by&#xd;
ultracentrifugation and identified and characterized them by transmission electron microscopy&#xd;
(TEM) and nanoparticle-tracking analysis (NTA).&#xd;
To study if human MSC-derived EV were able to incorporate into murine cardiomyocytes,&#xd;
we added fluorescence dye-labelled MSC-EV to primary cardiomyocytes during different times&#xd;
(1, 3, 6 and 24 hours) to study the optimal incorporation time by FC and we confirmed the&#xd;
incorporation of MSC-EV by IF after 24 hours.&#xd;
Co-culture of MSC-EV with cardiomyocytes treated with doxorubicin was conducted to&#xd;
assess whether MSC-EV were able to attenuate doxorubicin-induced cardiac damage. We&#xd;
analysed the effect of MSC-EV incorporation into cardiomyocytes damaged with 1�M&#xd;
doxorubicin through the viability by MTT, luminescence (ATP production) and FC (Annexin V&#xd;
– 7-AAD) and cell death by luminescence (activity of caspases-3/7) and FC (Annexin V – 7-&#xd;
AAD). We also evaluated cTnT release by luminescence, the rate of beating, ROS production and&#xd;
DNA damage through FC and cellular response to stress through p21 expression by RT-PCR.&#xd;
Results&#xd;
We detected the presence of cardiomyocytes in the cell population with a mean of viability&#xd;
of 94,3% ± 4,4 at 24 hours.&#xd;
The viability of cardiomyocytes treated with 1 μM of doxorubicin decreased in a time-&#xd;
dependent manner, with the greatest reduction occurring at 24 hours compared to untreated&#xd;
&#xd;
control cardiomyocytes (76,4% ± 8,6 viability versus 100%, respectively). Regarding the cTnT&#xd;
release, there were only statistical differences 24 hours post-treatment. At 24 hours after treatment&#xd;
with doxorubicin, a significant reduction in mean beats/min was observed versus baseline&#xd;
cardiomyocytes (42 ± 8,7 vs 85 ± 13,8).&#xd;
MSC characterization showed that: MSC adhered to a plastic surface with a characteristic&#xd;
fibroblast morphology; MSC expressed CD73, CD90, CD105, CD44 and CD166 and were&#xd;
negative for CD14, CD19, CD34, CD45 and HLA-DR; and MSC differentiated to the osteoblastic&#xd;
line, observing a polygonal morphology and positivity after the cytochemical labelling of alkaline&#xd;
phosphatase and they also differentiated to the adipogenic line, forming the lipid vacuoles stained&#xd;
through Oil-Red-O dye, according to the defining criteria of the International Society of Cell&#xd;
Therapy (ISCT) (10).&#xd;
TEM confirmed that MSC-EV had a rounded morphology and a characteristic size (an&#xd;
average size of 215 nm) and a concentration of 1,05·106 particles/mL was observed by NTA,&#xd;
which values are established by the International Society for Extracellular Vesicles (ISEV) (11).&#xd;
FC analysis revealed that EV were incorporated from the first hour of incubation (0.61%),&#xd;
and the highest rate of incorporation was observed after 24 hours (moment in which 21,5% ± 8,3&#xd;
of the cardiomyocytes had incorporated EV). The incorporation of MSC-EV from healthy donors&#xd;
into cardiomyocytes after 24 hours by confocal microscopy was also confirmed by IF.&#xd;
In the studies of viability and death of murine primary cardiomyocytes by FC, doxorubicin&#xd;
treatment for 24 hours and also at 48 hours decreased the viability of murine cardiomyocytes in&#xd;
a statistically significant way. The presence of EV did not reverse this deleterious effect on&#xd;
doxorubicin-induced viability. From the point of view of apoptosis, doxorubicin for 24 hours does&#xd;
not significantly increase apoptosis, neither early nor late, while it does induce a significant&#xd;
increase in necrosis. The incorporation of EV into basal cardiomyocytes (without cardiotoxic&#xd;
treatment) or into treated cardiomyocytes did not cause significant changes in apoptosis or&#xd;
necrosis. With regard to the data at 48 hours after doxorubicin, the most relevant data is that the&#xd;
incorporation of EV into cardiomyocytes damaged with doxorubicin does significantly decrease&#xd;
cell necrosis, without relevant changes in the other parameters (similar to changes at 24 hours).&#xd;
In the study of cell viability using MTT, it is also observed that the incorporation of EV into&#xd;
cardiomyocytes damaged with doxorubicin did not reverse the reduction in cell viability induced&#xd;
by the drug. The same was shown by quantifying the intracellular amount of ATP present in&#xd;
cardiomyocytes at 24 hours and at 48 hours.&#xd;
After 24 hours of treatment with doxorubicin, a significant activation of caspases 3/7 was&#xd;
detected versus basal cardiomyocytes and the incorporation of EV from MSC into&#xd;
cardiomyocytes treated with doxorubicin did not reverse this effect.&#xd;
Both 24 hours and 48 hours after treatment with 1 μM of doxorubicin, there was a significant&#xd;
increase in the release of cardiac TnT to the culture medium. The addition of MSC-EV&#xd;
simultaneously with the drug significantly reduced this release of cardiac TnT at both times, even&#xd;
reaching values similar to those of undamaged cells.&#xd;
In basal cardiomyocytes, the mean value of the beating rate in vitro was 85,5 ± 13,8 beats&#xd;
&#xd;
per minute, observing a significant reduction in cells treated with doxorubicin for 24 hours. MSC-&#xd;
EV incorporation into damaged cardiomyocytes reversed this effect significantly.&#xd;
&#xd;
The damage induced in cardiomyocytes by doxorubicin induced a significant increase in&#xd;
ROS levels after 24 hours of treatment, and the incorporation of EV into damaged cells reversed&#xd;
this effect, significantly reducing the intracellular levels of ROS.&#xd;
In basal conditions, cardiomyocytes presented low percentages of double-stranded breaks in&#xd;
DNA. Treatment with doxorubicin caused a significant increase in DNA breaks, which was&#xd;
significantly reversed after the incorporation of MSC-EV together with the drug. Doxorubicin&#xd;
induced a significant increase in total DNA damage and the incorporation of MSC-EV&#xd;
significantly reduced DNA damage at 24 hours.&#xd;
Finally, we evaluated the gene expression of p21, related to cellular response to stress, and&#xd;
the results showed that treatment with 1 μM of doxorubicin stimulated p21 expression, and the&#xd;
incorporation of MSC-EV into damaged cardiomyocytes did not induce significant changes.&#xd;
Conclusions&#xd;
Regarding the development of an in vitro model of doxorubicin-induced cardiotoxicity:&#xd;
1. The addition of doxorubicin (1 μM of doxorubicin for 24 hours) in the culture media&#xd;
containing neonatal murine cardiomyocytes induces acute cardiotoxicity in vitro&#xd;
decreasing viability and contractility and increasing cTnT release to the supernatant. This&#xd;
in vitro model may be employed to analyze drug-induced cardiotoxicity.&#xd;
Regarding the incorporation of BM-MSC-EV into doxorubicin-damaged cardiomyocytes:&#xd;
2. BM-MSC-EV are able to incorporate into murine primary cardiomyocytes in a time&#xd;
dependent manner, with higher efficiency after 24 hours of incubation.&#xd;
Regarding the effects of EV incorporation into cardiomyocytes damaged by doxorubicin and the&#xd;
mechanisms by which these effects could be induced:&#xd;
3. BM-MSC-EV incorporation do not prevent cell death and are insufficient to compensate&#xd;
for the loss of cardiomyocytes occurring during acute injury at 24 hours, while they do&#xd;
decrease necrosis after 48 hours of doxorubicin treatment.&#xd;
4. Nevertheless, BM-MSC-EV incorporation contributes to reduce chemotherapy-induced&#xd;
cardiotoxicity by decreasing cTnT release and ROS production, improving&#xd;
cardiomyocytes’ contractility and attenuating DNA damage in our in vitro model.</dcterms:abstract>
<dcterms:issued>2020</dcterms:issued>
<dc:type>info:eu-repo/semantics/doctoralThesis</dc:type>
<dc:language xsi:type="dcterms:ISO639-2">spa</dc:language>
<dcterms:isReferencedBy>http://hdl.handle.net/10366/145461</dcterms:isReferencedBy>
<dc:identifier xsi:type="dcterms:URI">https://gredos.usal.es/bitstream/10366/145461/8/Rico%20Sorli%2c%20Ana.pdf</dc:identifier>
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<dcterms:license>https://gredos.usal.es/bitstream/10366/145461/3/license.txt</dcterms:license>
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<dc:rights>Attribution-NonCommercial-NoDerivatives 4.0 Internacional</dc:rights>
<dc:subject>Tesis y disertaciones académicas</dc:subject>
<dc:subject>Universidad de Salamanca (España)</dc:subject>
<dc:subject>Tesis Doctoral</dc:subject>
<dc:subject>Academic dissertations</dc:subject>
<dc:subject>Células stem mesenquimales</dc:subject>
<dc:subject>Terapia celular</dc:subject>
<dc:subject xsi:type="dcterms:MESH">Bone Marrow</dc:subject>
<dc:subject xsi:type="dcterms:MESH">Doxorubicin</dc:subject>
<dc:subject xsi:type="dcterms:MESH">Cardiotoxins</dc:subject>
<dc:identifier>10.14201/gredos.145461</dc:identifier>
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