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Publications (10 of 13) Show all publications
Prittinen, J., Ylärinne, J., Piltti, J., Karhula, S. S., Rieppo, L., Ojanen, S. P., . . . Qu, C. (2019). Effect of centrifugal force on the development of articular neocartilage with bovine primary chondrocytes. Cell and Tissue Research, 375(3), 629-639
Open this publication in new window or tab >>Effect of centrifugal force on the development of articular neocartilage with bovine primary chondrocytes
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2019 (English)In: Cell and Tissue Research, ISSN 0302-766X, E-ISSN 1432-0878, Vol. 375, no 3, p. 629-639Article in journal (Refereed) Published
Abstract [en]

A lot has been invested into understanding how to assemble cartilage tissue in vitro and various designs have been developed to manufacture cartilage tissue with native-like biological properties. So far, no satisfactory design has been presented. Bovine primary chondrocytes are used to self-assemble scaffold-free constructs to investigate whether mechanical loading by centrifugal force would be useful in manufacturing cartilage tissue in vitro. Six million chondrocytes were laid on top of defatted bone disks placed inside an agarose well in 50-ml culture tubes. The constructs were centrifuged once or three times per day for 15 min at a centrifugal force of 771×g for up to 4 weeks. Control samples were cultured under the same conditions without exposure to centrifugation. The samples were analysed by (immuno)histochemistry, Fourier transform infrared imaging, micro-computed tomography, biochemical and gene expression analyses. Biomechanical testing was also performed. The centrifuged tissues had a more even surface covering a larger area of the bone disk. Fourier transform infrared imaging analysis indicated a higher concentration of collagen in the top and bottom edges in some of the centrifuged samples. Glycosaminoglycan contents increased along the culture, while collagen content remained at a rather constant level. Aggrecan and procollagen α1(II) gene expression levels had no significant differences, while procollagen α2(I) levels were increased significantly. Biomechanical analyses did not reveal remarkable changes. The centrifugation regimes lead to more uniform tissue constructs, whereas improved biological properties of the native tissue could not be obtained by centrifugation.

Place, publisher, year, edition, pages
New York: Springer, 2019
Keywords
Cartilage tissue engineering, Centrifugal force, Osteoarthritis, Primary chondrocyte, Tissue assembly
National Category
Cell and Molecular Biology Orthopaedics Biochemistry Molecular Biology Cell Biology Medical Biotechnology (with a focus on Cell Biology (including Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy)
Research subject
Biochemistry; biomechanics; cell research; Orthopaedics
Identifiers
urn:nbn:se:umu:diva-152816 (URN)10.1007/s00441-018-2938-3 (DOI)000460535300006 ()30349935 (PubMedID)2-s2.0-85056623353 (Scopus ID)
Available from: 2018-11-08 Created: 2018-11-08 Last updated: 2025-02-20Bibliographically approved
Prittinen, J. O., Ylärinne, J. H., Piltti, J., Qu, C. & Lammi, M. (2017). Effect of gravitational force and hydrostatic pressure on the development of articular neocartilage. Paper presented at World Congress of the Osteoarthritis-Research-Society-International (OARSI) on Osteoarthritis, APR 27-30, 2017, Las Vegas, NV, USA. Osteoarthritis and Cartilage, 25, S386-S386
Open this publication in new window or tab >>Effect of gravitational force and hydrostatic pressure on the development of articular neocartilage
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2017 (English)In: Osteoarthritis and Cartilage, ISSN 1063-4584, E-ISSN 1522-9653, Vol. 25, p. S386-S386Article in journal, Meeting abstract (Other academic) Published
Place, publisher, year, edition, pages
Elsevier, 2017
National Category
Orthopaedics Clinical Medicine
Identifiers
urn:nbn:se:umu:diva-138611 (URN)10.1016/j.joca.2017.02.661 (DOI)000406888100661 ()
Conference
World Congress of the Osteoarthritis-Research-Society-International (OARSI) on Osteoarthritis, APR 27-30, 2017, Las Vegas, NV, USA
Note

Supplement 1

Meeting Abstract 629

Available from: 2017-09-29 Created: 2017-09-29 Last updated: 2025-02-18Bibliographically approved
Karhula, S., Finnilä, M., Lammi, M., Ylärinne, J., Kauppinen, S., Rieppo, L., . . . Saarakkala, S. (2017). Effects of articular cartilage constituents on phosphotungstic acid enhanced micro-computed tomography. PLOS ONE, 12(1), Article ID e0171075.
Open this publication in new window or tab >>Effects of articular cartilage constituents on phosphotungstic acid enhanced micro-computed tomography
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2017 (English)In: PLOS ONE, E-ISSN 1932-6203, Vol. 12, no 1, article id e0171075Article in journal (Refereed) Published
Abstract [en]

Contrast-enhanced micro-computed tomography (CEμCT) with phosphotungstic acid (PTA) has shown potential for detecting collagen distribution of articular cartilage. However, the selectivity of the PTA staining to articular cartilage constituents remains to be elucidated. The aim of this study was to investigate the dependence of PTA for the collagen content in bovine articular cartilage. Adjacent bovine articular cartilage samples were treated with chondroitinase ABC and collagenase to degrade the proteoglycan and the collagen constituents in articular cartilage, respectively. Enzymatically degraded samples were compared to the untreated samples using CEμCT and reference methods, such as Fourier-transform infrared imaging. Decrease in the X-ray attenuation of PTA in articular cartilage and collagen content was observed in cartilage depth of 0-13% and deeper in tissue after collagen degradation. Increase in the X-ray attenuation of PTA was observed in the cartilage depth of 13-39% after proteoglycan degradation. The X-ray attenuation of PTA-labelled articular cartilage in CEμCT is associated mainly with collagen content but the proteoglycans have a minor effect on the X-ray attenuation of the PTA-labelled articular cartilage. In conclusion, the PTA labeling provides a feasible CEμCT method for 3D characterization of articular cartilage.

Keywords
Collagens, cartilage, collagenases, histology, articular cartilage, safranin staining, x-ray radiography, polarized light microscopy
National Category
Cell and Molecular Biology Orthopaedics Biochemistry Molecular Biology
Research subject
Biochemistry; cell research; Orthopaedics
Identifiers
urn:nbn:se:umu:diva-130896 (URN)10.1371/journal.pone.0171075 (DOI)000396124700046 ()28135331 (PubMedID)2-s2.0-85011307904 (Scopus ID)
Available from: 2017-01-31 Created: 2017-01-31 Last updated: 2025-02-20Bibliographically approved
Ylärinne, J., Qu, C. & Lammi, M. (2017). Scaffold-free approach produces neocartilage tissue of similar quality as the use of HyStem™ and Hydromatrix™ scaffolds. Journal of materials science. Materials in medicine, 28(4), Article ID 59.
Open this publication in new window or tab >>Scaffold-free approach produces neocartilage tissue of similar quality as the use of HyStem™ and Hydromatrix™ scaffolds
2017 (English)In: Journal of materials science. Materials in medicine, ISSN 0957-4530, E-ISSN 1573-4838, Vol. 28, no 4, article id 59Article in journal (Refereed) Published
Abstract [en]

Numerous biomaterials are being considered for cartilage tissue engineering, while scaffold-free systems have also been introduced. Thus, it is important to know do the scaffolds improve the formation of manufactured neocartilages. This study compares scaffold-free cultures to two scaffold-containing ones. Six million bovine primary chondrocytes were embedded in HyStem™ or HydroMatrix™ scaffolds, or suspended in scaffold-free chondrocyte culture medium, and then loaded into agarose gel supported culture well pockets. Neocartilages were grown in the presence of hypertonic high glucose DMEM medium for up to 6 weeks. By the end of culture periods, the formed tissues were analyzed by histological staining for proteoglycans (PGs) and type II collagen, gene expression measurements of aggrecan, Sox9, procollagen α1(II), and procollagen α2(I) were performed using quantitative RT-PCR, and analyses of PG contents and structure were conducted by spectrophotometric and agarose gel electrophoretic methods. Histological stainings showed that the PGs and type II collagen were abundantly present in both the scaffold-free and the scaffold-containing tissues. The PG content gradually increased following the culture period. However, the mRNA expression levels of the cartilage-specific genes of aggrecan, procollagen α1(II) and Sox9 gradually decreased following culture period, while procollagen α2(I) levels increased. After 6-week-cultivations, the PG concentrations in neocartilage tissues manufactured with HyStem™ or HydroMatrix™ scaffolds, and in scaffold-free agarose gel-supported cell cultures, were similar to native cartilage. No obvious benefits could be seen on the extracellular matrix assembly in HyStem™ or HydroMatrix™ scaffolds cultures.

Place, publisher, year, edition, pages
Springer Publishing Company, 2017
Keywords
cartilage, scaffold-free culture, oxygen tension, TGF-beta, bovine, tissue engineering
National Category
Cell and Molecular Biology Orthopaedics
Research subject
Biochemistry; cell research; Orthopaedics
Identifiers
urn:nbn:se:umu:diva-131709 (URN)10.1007/s10856-017-5870-2 (DOI)000399020800005 ()28210971 (PubMedID)2-s2.0-85013335904 (Scopus ID)
Available from: 2017-02-19 Created: 2017-02-19 Last updated: 2023-03-24Bibliographically approved
Honkanen, J., Turunen, M., Freedman, J., Saarakkala, S., Grinstaff, M., Ylärinne, J., . . . Töyräs, J. (2016). Cationic contrast agent diffusion differs between cartilage and meniscus. Annals of Biomedical Engineering, 44(10), 2913-2921
Open this publication in new window or tab >>Cationic contrast agent diffusion differs between cartilage and meniscus
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2016 (English)In: Annals of Biomedical Engineering, ISSN 0090-6964, E-ISSN 1573-9686, Vol. 44, no 10, p. 2913-2921Article in journal (Refereed) Published
Abstract [en]

Contrast enhanced computed tomography (CECT) is a non-destructive imaging technique used for the assessment of composition and structure of articular cartilage and meniscus. Due to structural and compositional differences between these tissues, diffusion and distribution of contrast agents may differ in cartilage and meniscus. The aim of this study is to determine the diffusion kinematics of a novel iodine based cationic contrast agent (CA(2+)) in cartilage and meniscus. Cylindrical cartilage and meniscus samples (d = 6 mm, h ≈ 2 mm) were harvested from healthy bovine knee joints (n = 10), immersed in isotonic cationic contrast agent (20 mgI/mL), and imaged using a micro-CT scanner at 26 time points up to 48 h. Subsequently, normalized X-ray attenuation and contrast agent diffusion flux, as well as water, collagen and proteoglycan (PG) contents in the tissues were determined. The contrast agent distributions within cartilage and meniscus were different. In addition, the normalized attenuation and diffusion flux were higher (p < 0.05) in cartilage. Based on these results, diffusion kinematics vary between cartilage and meniscus. These tissue specific variations can affect the interpretation of CECT images and should be considered when cartilage and meniscus are assessed simultaneously.

Place, publisher, year, edition, pages
Springer, 2016
Keywords
Computed tomography, contrast enhancement, diffusion flux, diffusion kinematics, normalized attenuation, cartilage, meniscus
National Category
Orthopaedics Other Basic Medicine Radiology, Nuclear Medicine and Medical Imaging Biomedical Laboratory Science/Technology
Research subject
Diagnostic Radiology; Orthopaedics; Radiology
Identifiers
urn:nbn:se:umu:diva-119970 (URN)10.1007/s10439-016-1629-z (DOI)000385161800006 ()27129372 (PubMedID)2-s2.0-84964690934 (Scopus ID)
Available from: 2016-05-03 Created: 2016-05-03 Last updated: 2023-03-24Bibliographically approved
Ylärinne, J., Qu, C. & Lammi, M. (2016). HyStemTM and HydroMatrixTM scaffolds for articular cartilage tissue engineering. Paper presented at World Congress of the Osteoarthritis-Research-Society-International (OARSI) on Osteoarthritis, Amsterdam, Netherlands, March 31 - April 03, 2016. Osteoarthritis and Cartilage, 24, S466-S466
Open this publication in new window or tab >>HyStemTM and HydroMatrixTM scaffolds for articular cartilage tissue engineering
2016 (English)In: Osteoarthritis and Cartilage, ISSN 1063-4584, E-ISSN 1522-9653, Vol. 24, p. S466-S466Article in journal, Meeting abstract (Other academic) Published
Abstract [en]

Purpose: The purpose of the articular cartilage is to protect the subchondral bone from both impacts and abrasion caused by normal movement of an individual. In osteoarthritis, the tissue wearing leads in the worst case to almost complete erosion of cartilage tissue in the joint. The goal of cartilage tissue engineering is to develop methods to manufacture implants for cartilage repair. This study was conducted to compare neocartilages generated in scaffolds and scaffold-free, agarose gel-supported primary chondrocyte cultures.

Methods: Six million bovine primary chondrocytes were embedded in the HyStem™ (HS) or the HydroMatrix™ (HM)scaffolds, or suspended in chondrocyte culture medium (scaffold-free), and then loaded to the agarose gel supported culture wells. The neocartilages were grown in the presence of hypertonic high glucose DMEM medium in 37° C incubator at 20% O2 and 5% CO2 for one, three or six weeks. By the end of the culture periods, the formed tissues were analyzed by toluidine blue staining of their histological sections for proteoglycans (PGs) and immunostaining for type II collagen. The gene expression measurements of the chondrocyte-specific genes aggrecan, Sox9 and procollagen α1(II), as well as those of procollagen α2(I), were performed using quantitative RT-PCR, and analyses of the PG contents and the structure were conducted by spectrophotometric and agarose gel electrophoretic methods, respectively.

Results: The neocartilages generated in scaffold-free cultures appeared slightly bigger in size than those tissues generated in the HyStem™ or the HydroMatrix™ scaffolds (Figure 1). The histological stainings showed that the PGs and type II collagen were abundantly present both in the scaffold-free and the scaffold-containing tissues (Figures 2 and 3). The PG content of the tissues generated in both scaffold-free and scaffold culture gradually increased following the culture period. However, the mRNA expression levels of the cartilage-specific genes of aggrecan, procollagen α1(II) and Sox9 gradually decreased following culture period, while procollagen α2(I) levels increased.

Conclusions: The results from our present study showed that there was no obvious difference in quality of the tissues generated in the scaffolds or the scaffold-free cell culture system. We were able to grow regularly-shaped, smooth-surfaced neotissues with all the methods used in the present study. The HyStem™ scaffold appeared to be helpful for the formation of the tissue in the beginning of the cultivation, whereas the HydroMatrix™ proved harder to handle. The culture methods produced good hyaline cartilage-like tissues. The molecular contents were similar to the native cartilage. However, the structural organization did not have the same assembly as the native articular cartilage. Further development of the culture technique needs to be solved in the future research.

Place, publisher, year, edition, pages
Elsevier, 2016
National Category
Medical Biotechnology (with a focus on Cell Biology (including Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy)
Identifiers
urn:nbn:se:umu:diva-120639 (URN)10.1016/j.joca.2016.01.850 (DOI)000373538800826 ()
Conference
World Congress of the Osteoarthritis-Research-Society-International (OARSI) on Osteoarthritis, Amsterdam, Netherlands, March 31 - April 03, 2016
Available from: 2016-12-14 Created: 2016-05-18 Last updated: 2024-07-02Bibliographically approved
Ylärinne, J. (2016). Production of neocartilage tissues using primary chondrocytes. (Doctoral dissertation). Umeå: Umeå University
Open this publication in new window or tab >>Production of neocartilage tissues using primary chondrocytes
2016 (English)Doctoral thesis, comprehensive summary (Other academic)
Alternative title[sv]
Fabrikation av konstgjord brosk med primära broskceller
Abstract [en]

Hyaline cartilage is a highly specialized tissue, which plays an important role in the articulating joints of an individual. It provides the joints with a nearly frictionless, impact resisting surface to protect the ends of the articulating bones. Articular cartilage has a poor self-repair capacity and, therefore, it rarely heals back to normal after an injury. Overweight, injuries, overloading and genetic factors may initiate a degenerative disease of the joint called osteoarthritis.

Osteoarthiritis is a major global public health issue. Currently, the most used treatment for large articular cartilage defects is joint replacement surgery. However, possibilities to replace this highly invasive operation with strategies based on tissue engineering are currently investigated. The idea of the tissue engineering is to optimize the use of the cells, biomaterials and culture conditions to regenerate a new functional tissue for the defect site.

The goal of this thesis was to manufacture cartilage tissue in cell culture conditions in vitro. Bovine primary chondrocytes isolated from the femoral condyles were used in all the experiments for neocartilage production. The samples were collected for histology, gene expression level quantifications, and analyses of proteoglycan (PG) content and quality. The histological sections were stained for type II collagen and PGs, the quantitative RT-PCR was used to observe the relative expressions of aggrecan, Sox9, procollagen α2(I) and procollagen α1(II) genes. The PGs were quantified using a spectrophotometric method, and agarose gel electrophoresis was used to separate the PGs according to their size.

In the two first studies, we optimized the culture conditions of in vitro scaffold-free culture technique to produce the native-type hyaline cartilage of a good quality. We found out that high glucose concentration and hypertonic medium at 20% oxygen tension promoted the best hyaline-like neocartilage tissue production. Glucosamine sulfate supplementation, low oxygen tension, 5 mM glucose concentration and a transient TGF-β3 supplementation were not beneficial for the neocartilage formation in the scaffold-free cell culture system.

In the third study, we used these newly defined, optimized culture conditions to produce the neocartilage tissues in the HyStem™ and the HydroMatrix™ scaffold materials and we compared these tissues to the ones grown as scaffold-free control cultures. We noticed that there was no difference between the controls and the scaffolds, and occasionally the scaffold-free controls had produced better quality cartilage than the ones with the scaffolds. Overall, the neocartilage tissues were of good hyaline-like quality in the third study. Their extracellular matrix contents were close to the native cartilage, although the neotissues lacked the zonal organization typical to the normal articular cartilage. The tissues had the right components, but their ultrastructure differed from the native cartilage.

In conclusion, we were able to optimize our in vitro neocartilage culture method further, and discovered a good combination of the culture conditions to produce hyaline-like cartilage of good quality. Surprisingly, the scaffold materials were not beneficial for the cartilage formation.

 

Abstract [fi]

Lasi- eli hyaliinirusto on pitkälle erikoistunutta kudosta, jolla on erittäin tärkeä rooli yksilön nivelten toiminnassa. Kudos suojaa ruston alapuolista luuta muodostamalla lähes kitkattoman ja joustavan liikkumista helpottavan pinnan. Lasiruston oma uusiutumiskyky on hyvin heikko, ja näin ollen kudos vain harvoin paranee alkuperäisen kaltaiseksi vaurion jälkeen. Ylipaino, vammat, liiallinen kuormitus tai geneettiset tekijät voivat käynnistää rustokudoksen rappeutumisen. Tätä tilaa kutsutaan nivelrikoksi.

Nivelrikko on valtava kansanterveydellinen ongelma. Keinonivelleikkaus on nykyisellään ainoa hoitokeino pinta-alaltaan laajojen nivelruston vaurioiden hoitoon. Vaihtoehtoja tämän suuren ja invasiivisen kirurgisen operaation korvaamiseksi tutkitaan kuitenkin koko ajan ympäri maailmaa. Kudosteknologian ajatuksena on optimoida solujen, biomateriaalien ja erilaisten kasvatusolosuhteiden käyttö uuden, alkuperäisen kaltaisen toiminnallisen kudoksen luomiseksi vauriokohtaan.

Väitöskirjan kaikissa kolmessa osatutkimuksessa uudisrustokudoksia tuotettiin käyttäen naudan polven rustosta eristettyjä primäärisiä rustosoluja. Näytteet kerättiin histologisia analyysejä, geenin ilmentymistutkimuksia ja proteoglykaanisisällön ja -jakauman (PG) analyyseja varten. Histologisista leikkeistä värjättiin tyypin II kollageeni ja PG:t, ja kvantitatiivista RT-PCR -menetelmää käytettiin aggrekaani-, Sox9-, prokollageeni α2(I)- ja prokollageeni α1(II)-geenien suhteellisten ilmentymistasojen määrittämiseen. Proteoglykaanisisältö analysoitiin käyttäen spektrofotometristä menetelmää, ja PG:t eroteltiin kokonsa perusteella agaroosigeelielektroforeesia käyttäen.

Kahdessa ensimmäisessä osatutkimuksessa optimoitiin tukirakenteetta kasvattujen uudisrustojen kasvatusolosuhteita natiivin kaltaisen lasiruston tuottamiseksi. Havaitsimme, että korkea glukoosipitoisuus ja hypertoninen elatusaine yhdistettynä 20 % happiosapaineeseen tuotti parhaimman laatuista uudisrustokudosta tutkituista yhdistelmistä. Glukosamiinisulfaatin lisäys, matala happiosapaine, 5 mM glukoosi konsentraatio tai TGF-β3:n lisääminen alkuvaiheessa eivät edesauttaneet uudisrustokudosten muodostumisessa.

Kolmannessa osatutkimuksessa otettiin käyttöön uudet, hyväksi havaitut kasvatusolosuhteet yhdistettynä HyStem™ and HydroMatrix™ -tukimateriaaleihin, ja niitä verrattiin tukirakenteettomaan kasvatusmenetelmään. Tutkimuksessa havaittiin, ettei tukirakenteettoman kontrollin tai tukimateriaalien välillä ollut mitään eroa, ja että kontrollikasvatukset tuottivat ajoittain jopa parempaa rustoa kuin tukimateriaalein kasvatetut. Kaiken kaikkiaan kaikki tuotetut uudiskudokset muistuttivat laadullisesti lasiruston kaltaista kudosta. Molekyylisisältö lähenteli natiivia rustoa, vaikkakin uudiskudoksista puuttui normaalille nivelrustolle tyypillinen vyöhykkeinen järjestäytyminen. Kudoksissa oli parhaimmillaan oikea määrä oikeita komponentteja, mutta ne eivät vain olleet järjestäytyneet oikealla tavalla.

Onnistuimme optimoimaan uudisrustokudosten kasvatusmenetelmäämme. Löysimme hyvän kasvatusolosuhteiden yhdistelmän, jonka avulla kykenimme tuottamaan lasiruston kaltaista uudisrustokudosta. Hivenen yllättäenkin, tukimateriaalit eivät olleet avuksi tutkimuksessamme uudisrustokudoksia muodostettaessa.

Place, publisher, year, edition, pages
Umeå: Umeå University, 2016. p. 70
Series
Umeå University medical dissertations, ISSN 0346-6612 ; 1769
Keywords
primary chondrocytes, articular cartilage, tissue engineering, neocartilage, scaffold, scaffold-free, hyaluronan, self-assembling peptide, TGF-β3, glucosamine sulfate, hypoxia, hypertonic medium, glucose
National Category
Medical Biotechnology (with a focus on Cell Biology (including Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy)
Identifiers
urn:nbn:se:umu:diva-113929 (URN)978-91-7601-391-5 (ISBN)
Public defence
2016-01-26, N430, Naturvetarhuset, Umeå, 09:00 (English)
Opponent
Supervisors
Available from: 2016-01-08 Created: 2016-01-06 Last updated: 2024-07-02Bibliographically approved
Prittinen, J., Jiang, Y., Ylärinne, J., Pakkanen, T., Lammi, M. & Qu, C. (2014). Chondrocyte behavior on nanostructured micropillar polypropylene and polystyrene surfaces. Materials Science and Engineering. C, Materials for Biological Applications, 43, 424-431
Open this publication in new window or tab >>Chondrocyte behavior on nanostructured micropillar polypropylene and polystyrene surfaces
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2014 (English)In: Materials Science and Engineering. C, Materials for Biological Applications, ISSN 0928-4931, Vol. 43, p. 424-431Article in journal (Refereed) Published
Abstract [en]

This study was aimed to investigate whether patterned polypropylene (PP) or polystyrene (PS) could enhance the chondrocytes' extracellular matrix (ECM) production and phenotype maintenance. Bovine primary chondrocytes were cultured on smooth PP and PS, as well as on nanostructured micropillar PP (patterned PP) and PS (patterned PS) for 2 weeks. Subsequently, the samples were collected for fluorescein diacetate-based cell viability tests, for immunocytochemical assays of types I and II collagen, actin and vinculin, for scanning electronic microscopic analysis of cell morphology and distribution, and for gene expression assays of Sox9, aggrecan, procollagen α1(II), procollagen α1(X), and procollagen α2(I) using quantitative RT-PCR assays. After two weeks of culture, the bovine primary chondrocytes had attached on both patterned PP and PS, while practically no adhesion was observed on smooth PP. However, the best adhesion of the cells was on smooth PS. The cells, which attached on patterned PP and PS surfaces synthesized types I and II collagen. The chondrocytes' morphology was extended, and an abundant ECM network formed around the attached chondrocytes on both patterned PP and PS. Upon passaging, no significant differences on the chondrocyte-specific gene expression were observed, although the highest expression level of aggrecan was observed on the patterned PS in passage 1 chondrocytes, and the expression level of procollagen α1(II) appeared to decrease in passaged chondrocytes. However, the expressions of procollagen α2(I) were increased in all passaged cell cultures. In conclusion, the bovine primary chondrocytes could be grown on patterned PS and PP surfaces, and they produced extracellular matrix network around the adhered cells. However, neither the patterned PS nor PP could prevent the dedifferentiation of chondrocytes.

Place, publisher, year, edition, pages
Elsevier, 2014
Keywords
Chondrocyte, polypropylene, polystyrene, micropillar, nanostructure
National Category
Materials Chemistry Cell and Molecular Biology
Research subject
Materials Science; cell research
Identifiers
urn:nbn:se:umu:diva-103870 (URN)10.1016/j.msec.2014.07.045 (DOI)000342529000052 ()25175232 (PubMedID)
Available from: 2015-06-02 Created: 2015-06-02 Last updated: 2023-03-07Bibliographically approved
Inkinen, S., Liukkonen, J., Ylärinne, J., Puhakka, P., Lammi, M., Virén, T., . . . Töyräs, J. (2014). Collagen and chondrocyte concentrations control ultrasound scattering in agarose scaffolds. Ultrasound in Medicine and Biology, 40(9), 2162-2171
Open this publication in new window or tab >>Collagen and chondrocyte concentrations control ultrasound scattering in agarose scaffolds
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2014 (English)In: Ultrasound in Medicine and Biology, ISSN 0301-5629, E-ISSN 1879-291X, Vol. 40, no 9, p. 2162-2171Article in journal (Refereed) Published
Abstract [en]

Ultrasound imaging has been proposed for diagnostics of osteoarthritis and cartilage injuries in vivo. However, the specific contribution of chondrocytes and collagen to ultrasound scattering in articular cartilage has not been systematically studied. We investigated the role of these tissue structures by measuring ultrasound scattering in agarose scaffolds with varying collagen and chondrocyte concentrations. Ultrasound catheters with center frequencies of 9 MHz (7.1–11.0 MHz, −6 dB) and 40 MHz (30.1–45.3 MHz, −6 dB) were applied using an intravascular ultrasound device. Ultrasound backscattering quantified in a region of interest starting right below sample surface differed significantly (p < 0.05) with the concentrations of collagen and chondrocytes. An ultrasound frequency of 40 MHz, as compared with 9 MHz, was more sensitive to variations in collagen and chondrocyte concentrations. The present findings may improve diagnostic interpretation of arthroscopic ultrasound imaging and provide information necessary for development of models describing ultrasound propagation within cartilage.

Place, publisher, year, edition, pages
Elsevier, 2014
Keywords
ultrasound, imaging, articular cartilage, collagen, chondrocyte, scattering, attenuation
National Category
Physical Sciences Radiology, Nuclear Medicine and Medical Imaging
Research subject
Physics; cell research
Identifiers
urn:nbn:se:umu:diva-103866 (URN)10.1016/j.ultrasmedbio.2014.03.016 (DOI)000341461100028 ()24972499 (PubMedID)
Available from: 2015-06-02 Created: 2015-06-02 Last updated: 2018-06-07Bibliographically approved
Puhakka, P., Ylärinne, J., Lammi, M., Saarakkala, S., Tiitu, V., Kröger, H., . . . Töyräs, J. (2014). Dependence of light attenuation and backscattering on collagen concentration and chondrocyte density in agarose scaffolds. Physics in Medicine and Biology, 59(21), 6537-6548
Open this publication in new window or tab >>Dependence of light attenuation and backscattering on collagen concentration and chondrocyte density in agarose scaffolds
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2014 (English)In: Physics in Medicine and Biology, ISSN 0031-9155, E-ISSN 1361-6560, Vol. 59, no 21, p. 6537-6548Article in journal (Refereed) Published
Abstract [en]

Optical coherence tomography (OCT) has been applied for high resolution imaging of articular cartilage. However, the contribution of individual structural elements of cartilage on OCT signal has not been thoroughly studied. We hypothesize that both collagen and chondrocytes, essential structural components of cartilage, act as important light scatterers and that variation in their concentrations can be detected by OCT through changes in backscattering and attenuation. To evaluate this hypothesis, we established a controlled model system using agarose scaffolds embedded with variable collagen concentrations and chondrocyte densities. Using OCT, we measured the backscattering coefficient (µb) and total attenuation coefficient (µt) in these scaffolds. Along our hypothesis, light backscattering and attenuation in agarose were dependent on collagen concentration and chondrocyte density. Significant correlations were found between µt and chondrocyte density (ρ = 0.853, p < 0.001) and between µt and collagen concentration (ρ = 0.694, p < 0.001). µb correlated significantly with chondrocyte density (ρ = 0.504, p < 0.001) but not with collagen concentration (ρ = 0.103, p = 0.422) of the scaffold. Thus, quantitation of light backscattering and, especially, attenuation could be valuable when evaluating the integrity of soft tissues, such as articular cartilage with OCT.

Place, publisher, year, edition, pages
Institute of Physics Publishing (IOPP), 2014
Keywords
articular cartilage, chondrocyte, collagen, optical coherence tomography, attenuation, backscattering
National Category
Radiology, Nuclear Medicine and Medical Imaging Physical Sciences
Research subject
Physics
Identifiers
urn:nbn:se:umu:diva-103862 (URN)10.1088/0031-9155/59/21/6537 (DOI)000343092900017 ()25310088 (PubMedID)
Available from: 2015-06-02 Created: 2015-06-02 Last updated: 2018-06-07Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-9294-7431

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