A subscription to JoVE is required to view this content. Sign in or start your free trial.

Method Article

An Improved Method for the Preparation of Type I Collagen From Skin

22.5K views

DOI:

10.3791/51011

January 21st, 2014

In This Article

Summary

Traditional procedures for the isolation of soluble type 1 collagen (COL1) require about 10 days from start to finish because of lengthy buffer incubations and laborious resuspensions of fibrils. Here, we describe a means to purify COL1 from small dermal biopsies in less than 3 hr.

Abstract

Soluble type 1 collagen (COL1) is used extensively as an adhesive substrate for cell cultures and as a cellular scaffold for regenerative applications. Clinically, this protein is widely used for cosmetic surgery, dermal injections, bone grafting, and reconstructive surgery. The sources of COL1 for these procedures are commonly nonhuman, which increases the potential for inflammation and rejection as well as xenobiotic disease transmission. In view of this, a method to efficiently and quickly purify COL1 from limited quantities of autologously-derived tissues would circumvent many of these issues; however, standard isolation protocols are lengthy and often require large quantities of collagenous tissues. Here, we demonstrate an efficient COL1 extraction method that reduces the time needed to isolate and purify this protein from about 10 days to less than 3 hr. We chose the dermis as our tissue source because of its availability during many surgical procedures. This method uses traditional extraction buffers combined with forceful agitation and centrifugal filtration to obtain highly-pure, soluble COL1 from small amounts of corium. Briefly, dermal biopsies are washed thoroughly in ice-cold dH2O after removing fat, connective tissue, and hair. The skin samples are stripped of noncollagenous proteins and polysaccharides using 0.5 M sodium acetate and a high speed bench-top homogenizer. Collagen from residual solids is subsequently extracted with a 0.075 M sodium citrate buffer using the homogenizer. These extracts are purified using 100,000 MW cut-off centrifugal filters that yield COL1 preparations of comparable or superior quality to commercial products or those obtained using traditional procedures. We anticipate this method will facilitate the utilization of autologously-derived COL1 for a multitude of research and clinical applications.

Introduction

For decades, researchers and commercial vendors have isolated solubilized COL1 from an assortment of tissue sources including skin and tendon using some variation of a simple acid extraction protocol followed by neutralization, which results in a resuspension of a matrix of organized COL1 fibrils that can be used for a multitude of biomedical applications 1-4.  While there are many examples of clinical applications for COL1, few of these employ autologously-derived COL1 because preparation of this protein requires lengthy extractions taking days or weeks to perform5-7. As a result, research investigators and physicians generally use expensive, commercial preparations of COL1 that are prepared using nonhuman tissues such as rat, bovine, or porcine corium or using skin removed from cadavers or following male circumcision. For regenerative applications, many of these products exhibit variability with respect to their ability to form solid matrices or tissue constructs capable of supporting cell attachment and growth. Consequently, there is a distinct need for a new standardized method designed to quickly extract COL1 from accessible and plentiful autologous tissue sources.

Such a method would save both time and money in the research setting where COL1 could be extracted from the animal model of interest and used for preclinical testing of engineered tissues assembled on collagen-based scaffolds. At the same time, having the option of using a rapidly-isolated, autologously-derived COL1 in the clinic would increase the overall safety for patients that would otherwise receive allogeneic or xenogeneic preparations. For patients receiving an autogeneic preparation, this streamlined method would greatly reduce the interval between biopsy collection and collagen application. For these reasons, we sought to improve upon a long-established COL1 isolation and purification method by using high-speed agitation and size-exclusion centrifugation. This method is simple to perform using standard buffers and equipment found in many laboratories. By employing high-speed agitation, our protocol reduces the time necessary to isolate soluble, dermal COL1 from approximately 10 days to less than 3 hr8.  Importantly, this method can be easily performed in the clinical setting in order to prepare autologously-derived COL1 for use in patients during a single set of procedures.

Access restricted. Please log in or start a trial to view this content.

Protocol

Here we will demonstrate the isolation of COL1 from lamb skin.  As written, this protocol can also be used to successfully isolate COL1 from rabbit and human skin.

1. Prepare Dermal Sample

  1. Equilibrate all reagents to 4 °C prior to use.
  2. Rinse dermal sample (25-50 g) in ice-cold dH2O and remove any wool, fur, or hair with depilatory cream.
  3. Use a single-edge razor blade to scrape the sample clean of connective tissue and fat.
  4. Rinse the sample in ice-cold dH2O.
  5. Slice the skin sample into 1 cm x 1 cm pieces with a single-edge razor blade.

2. Remove Noncollagenous Solubilized Material

  1. Weigh out 5 g of sample per 50 ml conical tube and add 30 ml of ice-cold 0.5 M sodium acetate.
  2. Mix tubes for 1 min at the 6 m/sec setting using a 50 ml tube adaptor in the bench-top homogenizer.
  3. Discard supernatant and repeat for a total of 7 sodium acetate wash cycles.
  4. Rinse the sample in ice-cold dH2O and mix once to remove residual sodium acetate.
  5. Use a spatula to compress the sample against the side of the tube to remove excess liquid and then transfer to a fresh 50 ml conical tube.

3. Type I Collagen Extraction

  1. Wash the sample twice in 2 ml/g 0.075 M sodium citrate buffer for 1 min at 6 m/sec in the bench-top homogenizer compressing the sample and discarding the supernatant after each wash.
  2. Add a fresh 2 ml/g aliquot of 0.075 M sodium citrate buffer to the sample.
  3. Perform 6 sequential 1 min, 6 m/sec bench-top homogenizer mix cycles of agitation without removing the buffer between each cycle.
  4. Transfer the thick, clear supernatant to a collection tube.
  5. Add an additional 1 ml/g 0.075 M sodium citrate buffer to the sample and perform one final bench-top homogenizer agitation cycle.
  6. Add this final supernatant to a collection tube.
  7. Centrifuge the collection tube at 3,200 x g for 10 min at 4 °C.
  8. Transfer the supernatant to the top compartment of a 100,000 molecular weight cut off centrifugal filter device.
  9. Centrifuge at 3,200 x g for 30 min at 4 °C.
  10. Transfer the purified COL1 from the upper compartment to a clean conical tube and store at 4 °C.

Access restricted. Please log in or start a trial to view this content.

Results

This COL1 isolation protocol requires about 2 hr and 15 min to complete. Figure 1 shows a schematic diagram outlining the major steps in this procedure. Preparing the sample and performing the 7 cycles of high-speed agitations and rinses with sodium acetate takes approximately 35 min (Figures 1A-C). Performing one agitation and rinse cycle with dH2O takes approximately 5 min (Figures 1D and 1E). Adding sodium citrate and subjecting the sample to one agitation ...

Access restricted. Please log in or start a trial to view this content.

Discussion

A crucial component to this method is the repeated efficient compression of the dermal sample to remove excess liquid. It is critical to remove as much sodium acetate as possible in step 2.5 by compressing the sample. We use a spatula to compact the skin against the side of the tube; however, cheesecloth could also be used, although this would necessitate removal of the sample from the tube and increase the time required to perform these steps. Likewise, it is important to compress the sample in step 3.1 so that the volu...

Access restricted. Please log in or start a trial to view this content.

Disclosures

The authors have no competing financial interests to disclose.

Acknowledgements

This work was supported by a research grant from the National Institutes of Health (HL068915 to DBC), a New Researcher Award from the Thrasher Research Fund (to CAP), a Grant-in-Aid from the American Heart Association (12GRNT11910008 to DBC), a research grant from the Children's Heart Foundation (to DBC), and donations to the Boston Children's Hospital Cardiac Conduction Fund, the Ryan Family Endowment, and by David Pullman.

Access restricted. Please log in or start a trial to view this content.

Materials

List of materials used in this article
NameCompanyCatalog NumberComments
FastPrep-24 SystemMP Biomedicals116004500
CentrifugeBeckmanJ6-MISwing bucket rotor to accommodate 50 ml conical tubes at 3,200 x g.

References

  1. Nageotte, J. Coagulation fibrillaire in vitro du collagène dissous dans un acide dilué. CR hebd. séances Acad. Sei. 184, 115 (1927).
  2. Schmitt, F. O., Hall, C. E., Jakus, M. A. Electron microscope investigation of the structure of collagen. J. Cell Comp. Physiol. 20, 11-33 (1942).
  3. Choi, Y. H., et al. Cardiac conduction through engineered tissue. Am. J. Pathol. 169, 72-85 (2006).
  4. Pacak, C. A., Cowan, D. B. Fabrication of myogenic engineered tissue constructs. J. Vis. Exp. (27), (2009).
  5. Cliche, S., Amiot, J., Avezard, C., Gariepy, C. Extraction and characterization of collagen with or without telopeptides from chicken skin. Poultry Sci. 82, 503-509 (2003).
  6. Rajan, N., Habermehl, J., Cote, M. F., Doillon, C. J., Mantovani, D. Preparation of ready-to-use, storable and reconstituted type I collagen from rat tail tendon for tissue engineering applications. Nat. Protoc. 1, 2753-2758 (2006).
  7. Seifter, S., Gallop, P. Preparation and properties of soluble collagens. Methods in Enzymology. Colowick, S., Kaplan, N. , Academic Press. NY. (1963).
  8. Pacak, C. A., Powers, J. M., Cowan, D. B. Ultrarapid purification of collagen type I for tissue engineering applications. Tissue Eng. Part C Methods. 17, 879-885 (2011).
  9. Ohan, M. P., Dunn, M. G. Glucose stabilizes collagen sterilized with gamma irradiation. J. Biomed. Mater. Res. A. 67, 1188-1195 (2003).
  10. Tyan, Y. C., Liao, J. D., Lin, S. P., Chen, C. C. The study of the sterilization effect of gamma ray irradiation of immobilized collagen polypropylene nonwoven fabric surfaces. J. Biomed. Mater. Res. A. 67, 1033-1043 (2003).
  11. Ber, S., Torun Kose, G., Hasirci, V. Bone tissue engineering on patterned collagen films: an in vitro study. Biomaterials. 26, 1977-1986 (2005).
  12. Liu, Y., Sun, S., Singha, S., Cho, M. R., Gordon, R. J. 3-D femtosecond laser patterning of collagen for directed cell attachment. Biomaterials. 26, 4597-4605 (2005).
  13. Thakar, R. G., Ho, F., Huang, N. F., Liepmann, D., Li, S. Regulation of vascular smooth muscle cells by micropatterning. Biochem. Biophys. Res. Comm. 307, 883-890 (2003).
  14. Leighton, J., Justh, G., Esper, M., Kronenthal, R. L. Collagen-coated cellulose sponge: three dimensional matrix for tissue culture of Walker tumor 256. Science. 155, 1259-1261 (1967).

Access restricted. Please log in or start a trial to view this content.

Reprints and Permissions

Tags

Collagen Type IDermal SampleSodium AcetateSodium CitrateCentrifugal FiltrationBenchtop HomogenizerCollagen ExtractionTissue PreparationProtein PurificationMolecular Weight Cutoff