Protein crystallization in hydrogel beads

被引:12
|
作者
Willaert, R [1 ]
Zegers, I [1 ]
Wyns, L [1 ]
Sleutel, M [1 ]
机构
[1] Vrije Univ Brussels VIB, Dept Ultrastruct, B-1050 Brussels, Belgium
来源
ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY | 2005年 / 61卷
关键词
D O I
10.1107/S0907444905021566
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The use of hydrogel beads for the crystallization of proteins is explored in this contribution. The dynamic behaviour of the internal precipitant, protein concentration and relative supersaturation in a gel bead upon submerging the bead in a precipitant solution is characterized theoretically using a transient diffusion model. Agarose and calcium alginate beads have been used for the crystallization of a low-molecular-weight (14.4 kDa, hen egg-white lysozyme) and a high-molecular-weight (636.0 kDa, alcohol oxidase) protein. Entrapment of the protein in the agarose-gel matrix was accomplished using two methods. In the first method, a protein solution is mixed with the agarose sol solution. Gel beads are produced by immersing drops of the protein - agarose sol mixture in a cold paraffin solution. In the second method ( which was used to produce calcium alginate and agarose beads), empty gel beads are first produced and subsequently filled with protein by diffusion from a bulk solution into the bead. This latter method has the advantage that a supplementary purification step is introduced ( for protein aggregates and large impurities) owing to the diffusion process in the gel matrix. Increasing the precipitant, gel concentration and protein loading resulted in a larger number of crystals of smaller size. Consequently, agarose as well as alginate gels act as nucleation promoters. The supersaturation in a gel bead can be dynamically controlled by changing the precipitant and/or the protein concentration in the bulk solution. Manipulation of the supersaturation allowed the nucleation rate to be varied and led to the production of large crystals which were homogeneously distributed in the gel bead.
引用
收藏
页码:1280 / 1288
页数:9
相关论文
共 50 条
  • [21] Viscoelastic properties of mineralized alginate hydrogel beads
    Magnus Ø. Olderøy
    Minli Xie
    Jens-Petter Andreassen
    Berit L. Strand
    Zhibing Zhang
    Pawel Sikorski
    Journal of Materials Science: Materials in Medicine, 2012, 23 : 1619 - 1627
  • [22] PURIFICATION OF LYSOZYME BY INTRINSICALLY SHIELDED HYDROGEL BEADS
    Li, Cong
    Zhang, R.
    Wang, L.
    Bowyer, A.
    Eisenthal, R.
    Shen, Yehua
    Hubble, J.
    MODERN PHYSICS LETTERS B, 2013, 27 (19):
  • [23] HYDROGEL BEADS FOR ORAL-DRUG DELIVERY
    KIM, CJ
    CHEMTECH, 1994, 24 (08) : 36 - 39
  • [24] Floating Hydrogel Beads Made by Droplet Impact
    Chu, Yanji
    Liao, Shenglong
    Wang, Qianci
    Ma, Yingchao
    Wang, Yapei
    SMALL, 2022, 18 (33)
  • [25] Investigation on the development of sturdy bioactive hydrogel beads
    Sangeetha, K.
    Abraham, T. Emilia
    JOURNAL OF APPLIED POLYMER SCIENCE, 2008, 107 (05) : 2899 - 2908
  • [26] ADSORPTION OF SILVER IONS ON CHITOSAN HYDROGEL BEADS
    Sujka, Witold
    Rogacki, Grzegorz
    Modrzejewska, Zofia
    Zarzycki, Roman
    PROGRESS ON CHEMISTRY AND APPLICATION OF CHITIN AND ITS DERIVATIVES, 2023, 28 : 166 - 187
  • [27] Acoustic focusing of beads and cells in hydrogel droplets
    Fornell, Anna
    Pohlit, Hannah
    Shi, Qian
    Tenje, Maria
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [28] Viscoelastic properties of mineralized alginate hydrogel beads
    Olderoy, Magnus O.
    Xie, Minli
    Andreassen, Jens-Petter
    Strand, Berit L.
    Zhang, Zhibing
    Sikorski, Pawel
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2012, 23 (07) : 1619 - 1627
  • [29] Noncovalent Hydrogel Beads as Microcarriers for Cell Culture
    Wieduwild, Robert
    Krishnan, Swati
    Chwalek, Karolina
    Boden, Annett
    Nowak, Mirko
    Drechsel, David
    Werner, Carsten
    Zhang, Yixin
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2015, 54 (13) : 3962 - 3966
  • [30] Fluorescence probing of the local environment in a hydrogel: TICT and photoisomerization in chitosan hydrogel beads
    Basu, Saswati
    Dandapat, Manika
    Ghosh, Deborin
    Mandal, Debabrata
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2014, 457 : 196 - 202