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Dive into the research topics where Karolina Archacka is active.

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Featured researches published by Karolina Archacka.


PLOS ONE | 2010

Clonal characterization of rat muscle satellite cells: proliferation, metabolism and differentiation define an intrinsic heterogeneity.

Carlo Alberto Rossi; Michela Pozzobon; Andrea Ditadi; Karolina Archacka; Annalisa Gastaldello; Marta Sanna; Chiara Franzin; Alberto Malerba; Gabriella Milan; Mara Cananzi; Stefano Schiaffino; Michelangelo Campanella; Roberto Vettor; Paolo De Coppi

Satellite cells (SCs) represent a distinct lineage of myogenic progenitors responsible for the postnatal growth, repair and maintenance of skeletal muscle. Distinguished on the basis of their unique position in mature skeletal muscle, SCs were considered unipotent stem cells with the ability of generating a unique specialized phenotype. Subsequently, it was demonstrated in mice that opposite differentiation towards osteogenic and adipogenic pathways was also possible. Even though the pool of SCs is accepted as the major, and possibly the only, source of myonuclei in postnatal muscle, it is likely that SCs are not all multipotent stem cells and evidences for diversities within the myogenic compartment have been described both in vitro and in vivo. Here, by isolating single fibers from rat flexor digitorum brevis (FDB) muscle we were able to identify and clonally characterize two main subpopulations of SCs: the low proliferative clones (LPC) present in major proportion (∼75%) and the high proliferative clones (HPC), present instead in minor amount (∼25%). LPC spontaneously generate myotubes whilst HPC differentiate into adipocytes even though they may skip the adipogenic program if co-cultured with LPC. LPC and HPC differ also for mitochondrial membrane potential (ΔΨm), ATP balance and Reactive Oxygen Species (ROS) generation underlying diversities in metabolism that precede differentiation. Notably, SCs heterogeneity is retained in vivo. SCs may therefore be comprised of two distinct, though not irreversibly committed, populations of cells distinguishable for prominent differences in basal biological features such as proliferation, metabolism and differentiation. By these means, novel insights on SCs heterogeneity are provided and evidences for biological readouts potentially relevant for diagnostic purposes described.


Biology of the Cell | 2012

Sdf-1 (CXCL12) improves skeletal muscle regeneration via the mobilisation of Cxcr4 and CD34 expressing cells

Edyta Brzoska; Magdalena Kowalewska; Agnieszka Markowska-Zagrajek; Kamil Kowalski; Karolina Archacka; Malgorzata Zimowska; Iwona Grabowska; Areta M. Czerwinska; Magdalena Czarnecka-Góra; Wladyslawa Streminska; Katarzyna Jańczyk-Ilach; Maria A. Ciemerych

The regeneration of skeletal muscles involves satellite cells, which are muscle‐specific precursor cells. In muscles, injured either mechanically or as a consequence of a disease, such as muscular dystrophy, local release of the growth factors and cytokines leads to satellite cells activation, proliferation and differentiation of the resulting myoblasts, followed by the formation of new myofibres. Various cell types, such as stem and progenitor cells, originating from other tissues different than the muscle, are also able to follow a myogenic program. Participation of these cells in the repair process depends on their precise mobilisation to the site of the injury.


Results and problems in cell differentiation | 2011

Cell cycle regulation during proliferation and differentiation of mammalian muscle precursor cells.

Maria A. Ciemerych; Karolina Archacka; Iwona Grabowska; Marta Przewoźniak

Proliferation and differentiation of muscle precursor cells are intensively studied not only in the developing mouse embryo but also using models of skeletal muscle regeneration or analyzing in vitro cultured cells. These analyses allowed to show the universality of the cell cycle regulation and also uncovered tissue-specific interplay between major cell cycle regulators and factors crucial for the myogenic differentiation. Examination of the events accompanying proliferation and differentiation leading to the formation of functional skeletal muscle fibers allows understanding the molecular basis not only of myogenesis but also of skeletal muscle regeneration. This chapter presents the basis of the cell cycle regulation in proliferating and differentiating muscle precursor cells during development and after muscle injury. It focuses at major cell cycle regulators, myogenic factors, and extracellular environment impacting on the skeletal muscle.


The International Journal of Developmental Biology | 2008

From Planarians to Mammals - the many faces of regeneration

Jerzy Moraczewski; Karolina Archacka; Edyta Brzoska; Maria-Anna Ciemerych; Iwona Grabowska; Katarzyna Jańczyk-Ilach; Wladyslawa Streminska; Malgorzata Zimowska

This report presents the history of the involvement of the Department of Cytology in studies of different aspects of regeneration. It can be divided into two major phases; the first focused on the regeneration of Turbellarians and the second on the regeneration of rat skeletal muscles including the differentiation of satellite cells in vitro. Regeneration of Turbellarians was investigated both at the cellular and molecular levels including the role of the protein kinase C (PKC) in this process. Studies on skeletal muscle regeneration initially focused on factors involved in regulation of signal transduction pathways. Next, we explored the influence of growth factors on the modulation of the regeneration process. Another important aspect of our studies was investigating of the distribution and function of different proteins involved in adhesion and fusion of myoblasts. Finally, we are also conducting research on the role of stem cells from other tissues in the regeneration of skeletal muscle.


Results and problems in cell differentiation | 2012

Mouse and Human Pluripotent Stem Cells and the Means of Their Myogenic Differentiation

Iwona Grabowska; Karolina Archacka; Areta M. Czerwinska; M. Krupa; Maria A. Ciemerych

Pluripotent stem cells, such as embryonic stem cells and induced pluripotent stem cells, are an important tool in the studies focusing at the differentiation of various cell types, including skeletal myoblasts. They are also considered as a source of the cells that due to their pluripotent character and availability could be turned into any required tissue and then used in future in regenerative medicine. However, the methods of the derivation of some of cell types from pluripotent cells still need to be perfected. This chapter summarizes the history and current advancements in the derivation and testing of pluripotent stem cells-derived skeletal myoblasts. It focuses at the in vitro methods allowing the differentiation of stem cells grown in monolayer or propagated as embryoid bodies, and also at in vivo tests allowing the verification of the functionality of obtained skeletal myoblasts.


Journal of Cachexia, Sarcopenia and Muscle | 2016

Stromal derived factor-1 and granulocyte-colony stimulating factor treatment improves regeneration of Pax7−/− mice skeletal muscles

Kamil Kowalski; Rafal Archacki; Karolina Archacka; Wladyslawa Streminska; Anna Paciorek; Magdalena Gołąbek; Maria A. Ciemerych; Edyta Brzoska

The skeletal muscle has the ability to regenerate after injury. This process is mediated mainly by the muscle specific stem cells, that is, satellite cells. In case of extensive damage or under pathological conditions, such as muscular dystrophy, the process of muscle reconstruction does not occur properly. The aim of our study was to test whether mobilized stem cells, other than satellite cells, could participate in skeletal muscle reconstruction.


The International Journal of Developmental Biology | 2008

Defective calcium release during in vitro fertilization of maturing oocytes of LT/Sv mice

Karolina Archacka; Anna Ajduk; Paweł Pomorski; Katarzyna Szczepanska; Marek Maleszewski; Maria A. Ciemerych

Oocytes of LT/Sv mice have anomalous cytoplasmic and nuclear maturation. Here, we show that in contrast to the oocytes of wild-type mice, a significant fraction of LT/Sv oocytes remains arrested at the metaphase of the first meiotic division and is unable to undergo sperm-induced activation when fertilized 15 hours after the resumption of meiosis. We also show that LT/Sv oocytes experimentally induced to resume meiosis and to reach metaphase II are unable to undergo activation in response to sperm penetration. However, the ability for sperm-induced activation developed during prolonged in vitro culture. Both types of LT/Sv oocytes, i.e. metaphase I and those that were experimentally induced to reach metaphase II, underwent activation when they were fertilized 21 hours after germinal vesicle breakdown (GVBD). Thus, the ability of LT/Sv oocytes to become activated by sperm depends on cytoplasmic maturation rather than on nuclear maturation i.e. on the progression of meiotic division. We also show that sperm penetration induces fewer Ca(2+) transients in LT/Sv oocytes than in control wild-type oocytes. In addition, we found that the levels of mRNA encoding different isoforms of protein kinase C (alpha, delta and zeta), that are involved in meiotic maturation and signal transduction during fertilization, differed between metaphase I LT/Sv oocytes which cannot be activated by sperm, and those which are able to undergo activation after fertilization. However, no significant differences between these oocytes were found at the level of mRNA encoding IP(3) receptors which participate in calcium release during oocyte fertilization.


Stem Cells and Development | 2016

Myogenic Differentiation of Mouse Embryonic Stem Cells That Lack a Functional Pax7 Gene

Areta M. Czerwinska; Iwona Grabowska; Karolina Archacka; Joanna Bem; Barbara Swierczek; Anita Helinska; Wladyslawa Streminska; Anna Fogtman; Roksana Iwanicka-Nowicka; Marta Koblowska; Maria A. Ciemerych

The transcription factor Pax7 plays a key role during embryonic myogenesis and sustains the proper function of satellite cells, which serve as adult skeletal muscle stem cells. Overexpression of Pax7 has been shown to promote the myogenic differentiation of pluripotent stem cells. However, the effects of the absence of functional Pax7 in differentiating embryonic stem cells (ESCs) have not yet been directly tested. Herein, we studied mouse stem cells that lacked a functional Pax7 gene and characterized the differentiation of these stem cells under conditions that promoted the derivation of myoblasts in vitro. We analyzed the expression of myogenic factors, such as myogenic regulatory factors and muscle-specific microRNAs, in wild-type and mutant cells. Finally, we compared the transcriptome of both types of cells and did not find substantial differences in the expression of genes related to the regulation of myogenesis. As a result, we showed that the absence of functional Pax7 does not prevent the in vitro myogenic differentiation of ESCs.


Biology of the Cell | 2014

Culturing muscle fibres in hanging drop: A novel approach to solve an old problem

Karolina Archacka; Michela Pozzobon; Andrea Repele; Carlo Alberto Rossi; Michelangelo Campanella; Paolo De Coppi

The satellite cells (SCs) associated with muscle fibres play a key role in postnatal growth and regeneration of skeletal muscle. Commonly used methods of isolation and in vitro culture of SCs lead to the mixture of their subpopulations that exist within muscle. To solve this problem, we used the well established technique, the hanging drop system, to culture SCs in a three‐dimensional environment and thus, to monitor them in their original niche.


Cell Cycle | 2016

Cell cycle regulation of embryonic stem cells and mouse embryonic fibroblasts lacking functional Pax7

Areta M. Czerwinska; Joanna Nowacka; Magdalena Aszer; Sylwia Gawrzak; Karolina Archacka; Anna Fogtman; Roksana Iwanicka-Nowicka; Katarzyna Jańczyk-Ilach; Marta Koblowska; Maria A. Ciemerych; Iwona Grabowska

ABSTRACT The transcription factor Pax7 plays a key role during embryonic myogenesis and in adult organisms in that it sustains the proper function of satellite cells, which serve as adult skeletal muscle stem cells. Recently we have shown that lack of Pax7 does not prevent the myogenic differentiation of pluripotent stem cells. In the current work we show that the absence of functional Pax7 in differentiating embryonic stem cells modulates cell cycle facilitating their proliferation. Surprisingly, deregulation of Pax7 function also positively impacts at the proliferation of mouse embryonic fibroblasts. Such phenotypes seem to be executed by modulating the expression of positive cell cycle regulators, such as cyclin E.

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