Cargando…

Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles

BACKGROUND: We studied the effect of carbon black (CB) agglomerated nanomaterial on biological membranes as revealed by shapes of human erythrocytes, platelets and giant phospholipid vesicles. Diluted human blood was incubated with CB nanomaterial and observed by different microscopic techniques. Gi...

Descripción completa

Detalles Bibliográficos
Autores principales: Pajnič, Manca, Drašler, Barbara, Šuštar, Vid, Krek, Judita Lea, Štukelj, Roman, Šimundić, Metka, Kononenko, Veno, Makovec, Darko, Hägerstrand, Henry, Drobne, Damjana, Kralj-Iglič, Veronika
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4391140/
https://www.ncbi.nlm.nih.gov/pubmed/25886274
http://dx.doi.org/10.1186/s12951-015-0087-3
_version_ 1782365770701864960
author Pajnič, Manca
Drašler, Barbara
Šuštar, Vid
Krek, Judita Lea
Štukelj, Roman
Šimundić, Metka
Kononenko, Veno
Makovec, Darko
Hägerstrand, Henry
Drobne, Damjana
Kralj-Iglič, Veronika
author_facet Pajnič, Manca
Drašler, Barbara
Šuštar, Vid
Krek, Judita Lea
Štukelj, Roman
Šimundić, Metka
Kononenko, Veno
Makovec, Darko
Hägerstrand, Henry
Drobne, Damjana
Kralj-Iglič, Veronika
author_sort Pajnič, Manca
collection PubMed
description BACKGROUND: We studied the effect of carbon black (CB) agglomerated nanomaterial on biological membranes as revealed by shapes of human erythrocytes, platelets and giant phospholipid vesicles. Diluted human blood was incubated with CB nanomaterial and observed by different microscopic techniques. Giant unilamellar phospholipid vesicles (GUVs) created by electroformation were incubated with CB nanomaterial and observed by optical microscopy. Populations of erythrocytes and GUVs were analyzed: the effect of CB nanomaterial was assessed by the average number and distribution of erythrocyte shape types (discocytes, echinocytes, stomatocytes) and of vesicles in test suspensions, with respect to control suspensions. Ensembles of representative images were created and analyzed using computer aided image processing and statistical methods. In a population study, blood of 14 healthy human donors was incubated with CB nanomaterial. Blood cell parameters (concentration of different cell types, their volumes and distributions) were assessed. RESULTS: We found that CB nanomaterial formed micrometer-sized agglomerates in citrated and phosphate buffered saline, in diluted blood and in blood plasma. These agglomerates interacted with erythrocyte membranes but did not affect erythrocyte shape locally or globally. CB nanomaterial agglomerates were found to mediate attractive interaction between blood cells and to present seeds for formation of agglomerate - blood cells complexes. Distortion of disc shape of resting platelets due to incubation with CB nanomaterial was not observed. CB nanomaterial induced bursting of GUVs while the shape of the remaining vesicles was on the average more elongated than in control suspension, indicating indirect osmotic effects of CB nanomaterial. CONCLUSIONS: CB nanomaterial interacts with membranes of blood cells but does not have a direct effect on local or global membrane shape in physiological in vitro conditions. Blood cells and GUVs are convenient and ethically acceptable methods for the study of effects of various substances on biological membranes and therefrom derived effects on organisms.
format Online
Article
Text
id pubmed-4391140
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-43911402015-04-10 Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles Pajnič, Manca Drašler, Barbara Šuštar, Vid Krek, Judita Lea Štukelj, Roman Šimundić, Metka Kononenko, Veno Makovec, Darko Hägerstrand, Henry Drobne, Damjana Kralj-Iglič, Veronika J Nanobiotechnology Research BACKGROUND: We studied the effect of carbon black (CB) agglomerated nanomaterial on biological membranes as revealed by shapes of human erythrocytes, platelets and giant phospholipid vesicles. Diluted human blood was incubated with CB nanomaterial and observed by different microscopic techniques. Giant unilamellar phospholipid vesicles (GUVs) created by electroformation were incubated with CB nanomaterial and observed by optical microscopy. Populations of erythrocytes and GUVs were analyzed: the effect of CB nanomaterial was assessed by the average number and distribution of erythrocyte shape types (discocytes, echinocytes, stomatocytes) and of vesicles in test suspensions, with respect to control suspensions. Ensembles of representative images were created and analyzed using computer aided image processing and statistical methods. In a population study, blood of 14 healthy human donors was incubated with CB nanomaterial. Blood cell parameters (concentration of different cell types, their volumes and distributions) were assessed. RESULTS: We found that CB nanomaterial formed micrometer-sized agglomerates in citrated and phosphate buffered saline, in diluted blood and in blood plasma. These agglomerates interacted with erythrocyte membranes but did not affect erythrocyte shape locally or globally. CB nanomaterial agglomerates were found to mediate attractive interaction between blood cells and to present seeds for formation of agglomerate - blood cells complexes. Distortion of disc shape of resting platelets due to incubation with CB nanomaterial was not observed. CB nanomaterial induced bursting of GUVs while the shape of the remaining vesicles was on the average more elongated than in control suspension, indicating indirect osmotic effects of CB nanomaterial. CONCLUSIONS: CB nanomaterial interacts with membranes of blood cells but does not have a direct effect on local or global membrane shape in physiological in vitro conditions. Blood cells and GUVs are convenient and ethically acceptable methods for the study of effects of various substances on biological membranes and therefrom derived effects on organisms. BioMed Central 2015-03-28 /pmc/articles/PMC4391140/ /pubmed/25886274 http://dx.doi.org/10.1186/s12951-015-0087-3 Text en © Pajnič et al.; licensee BioMed Central. 2015 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Pajnič, Manca
Drašler, Barbara
Šuštar, Vid
Krek, Judita Lea
Štukelj, Roman
Šimundić, Metka
Kononenko, Veno
Makovec, Darko
Hägerstrand, Henry
Drobne, Damjana
Kralj-Iglič, Veronika
Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles
title Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles
title_full Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles
title_fullStr Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles
title_full_unstemmed Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles
title_short Effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles
title_sort effect of carbon black nanomaterial on biological membranes revealed by shape of human erythrocytes, platelets and phospholipid vesicles
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4391140/
https://www.ncbi.nlm.nih.gov/pubmed/25886274
http://dx.doi.org/10.1186/s12951-015-0087-3
work_keys_str_mv AT pajnicmanca effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT draslerbarbara effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT sustarvid effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT krekjuditalea effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT stukeljroman effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT simundicmetka effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT kononenkoveno effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT makovecdarko effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT hagerstrandhenry effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT drobnedamjana effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles
AT kraljiglicveronika effectofcarbonblacknanomaterialonbiologicalmembranesrevealedbyshapeofhumanerythrocytesplateletsandphospholipidvesicles