Bioactivity-Guided Navigation of Chemical Space

被引:180
作者
Bon, Robin S.
Waldmann, Herbert [1 ]
机构
[1] Max Planck Inst Mol Physiol, Dept Biol Chem, D-44227 Dortmund, Germany
关键词
BIOLOGY-ORIENTED SYNTHESIS; TYROSINE-PHOSPHATASE-B; SOLID-PHASE SYNTHESIS; NATURAL-PRODUCTS; COMPOUND COLLECTIONS; SIMILARITY; INHIBITORS; DISCOVERY; CLASSIFICATION; LIBRARIES;
D O I
10.1021/ar100014h
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A central aim of biological research is to elucidate the many roles of proteins in complex, dynamic living systems; the selective perturbation of protein function is an important tool in achieving this goal. Because chemical perturbations offer opportunities often not accessible with genetic methods, the development of small-molecule modulators of protein function is at the heart of chemical biology research. In this endeavor, the identification of biologically relevant starting points within the vast chemical space available for the design of compound collections is a particularly relevant, yet difficult, task. In this Account, we present our research aimed at linking chemical and biological space to define suitable starting points that guide the synthesis of compound collections with biological relevance. Both protein folds and natural product (NP) scaffolds are highly conserved in nature. Whereas different amino acid sequences can make up ligand-binding sites in proteins with highly similar fold types, differently substituted NPs characterized by particular scaffold classes often display diverse biological activities. Therefore, we hypothesized that (i) ligand-binding sites with similar ligand-sensing cores embedded in their folds would bind NPs with similar scaffolds and (ii) selectivity is ensured by variation of both amino add side chains and NP substituents. To investigate this notion in compound library design, we developed an approach termed biology-oriented synthesis (BIOS). BIOS employs chem- and bioinformatic methods for mapping biologically relevant chemical space and protein space to generate hypotheses for compound collection design and synthesis. BIOS also provides hypotheses for potential bioactivity of compound library members. On the one hand, protein structure similarity clustering (PSSC) is used to identify ligand binding sites with high subfold similarity, that is, high structural similarity in their ligand-sensing cores. On the other hand, structural classification by scaffold trees (for example, structural classification of natural products or SCONP), when combined with software tools like "Scaffold Hunter", enables the hierarchical structural classification of small-molecule collections in tree-like arrangements, their annotation with bioactivity data, and the intuitive navigation of chemical space. Brachiation (in a manner analogous to tree-swinging primates) within the scaffold trees serves to identify new starting points for the design and synthesis of small-molecule libraries, and PSSC may be used to select potential protein targets. The introduction of chemical diversity in compound collections designed according to the logic of BIOS is essential for the frequent identification of small molecules with diverse biological activities. The continuing development of synthetic methodology, both on solid phase and in solution, enables the generation of focused small-molecule collections with sufficient substituent stereochemical, and scaffold diversity to yield comparatively high hit rates in biochemical and biological screens from relatively small libraries. BIOS has also allowed the identification of new ligand classes for several different proteins and chemical probes for the study of protein function in cells.
引用
收藏
页码:1103 / 1114
页数:12
相关论文
共 45 条
  • [1] Asymmetric solid-phase synthesis of 6,6-spiroketals
    Baran, O
    Sommer, S
    Waldmann, H
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2004, 43 (24) : 3195 - 3199
  • [2] Natural product-guided synthesis of a spiroacetal collection reveals modulators of tubulin cytoskeleton integrity
    Barun, O
    Kumar, K
    Sommer, S
    Langerak, A
    Mayer, TU
    Müller, O
    Waldmann, H
    [J]. EUROPEAN JOURNAL OF ORGANIC CHEMISTRY, 2005, 2005 (22) : 4773 - 4788
  • [3] Protein structure similarity clustering: Dynamic treatment of PDB structures facilitates clustering
    Charette, Bradley D.
    MacDonald, Richard G.
    Wetzel, Stefan
    Berkowitz, David B.
    Waldmann, Herbert
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2006, 45 (46) : 7766 - 7770
  • [4] Finishing the euchromatic sequence of the human genome
    Collins, FS
    Lander, ES
    Rogers, J
    Waterston, RH
    [J]. NATURE, 2004, 431 (7011) : 931 - 945
  • [5] Identification of inhibitors for mycobacterial protein tyrosine phosphatase B (MptpB) by biology-oriented synthesis (BIOS)
    Correa, Ivan R., Jr.
    Noeren-Mueller, Andrea
    Ambrosi, Horst-Dieter
    Jakupovic, Sven
    Saxena, Krishna
    Schwalbe, Harald
    Kaiser, Markus
    Waldmann, Herbert
    [J]. CHEMISTRY-AN ASIAN JOURNAL, 2007, 2 (09) : 1109 - 1126
  • [6] Small-molecule inhibition of APT1 affects Ras localization and signaling
    Dekker, Frank J.
    Rocks, Oliver
    Vartak, Nachiket
    Menninger, Sascha
    Hedberg, Christian
    Balamurugan, Rengarajan
    Wetzel, Stefan
    Renner, Steffen
    Gerauer, Marc
    Schoelermann, Beate
    Rusch, Marion
    Kramer, John W.
    Rauh, Daniel
    Coates, Geoffrey W.
    Brunsveld, Luc
    Bastiaens, Philippe I. H.
    Waldmann, Herbert
    [J]. NATURE CHEMICAL BIOLOGY, 2010, 6 (06) : 449 - 456
  • [7] Chemical space and biology
    Dobson, CM
    [J]. NATURE, 2004, 432 (7019) : 824 - 828
  • [8] Recent advances in selective opioid receptor agonists and antagonists
    Eguchi, M
    [J]. MEDICINAL RESEARCH REVIEWS, 2004, 24 (02) : 182 - 212
  • [9] METHODS FOR DRUG DISCOVERY - DEVELOPMENT OF POTENT, SELECTIVE, ORALLY EFFECTIVE CHOLECYSTOKININ ANTAGONISTS
    EVANS, BE
    RITTLE, KE
    BOCK, MG
    DIPARDO, RM
    FREIDINGER, RM
    WHITTER, WL
    LUNDELL, GF
    VEBER, DF
    ANDERSON, PS
    CHANG, RSL
    LOTTI, VJ
    CERINO, DJ
    CHEN, TB
    KLING, PJ
    KUNKEL, KA
    SPRINGER, JP
    HIRSHFIELD, J
    [J]. JOURNAL OF MEDICINAL CHEMISTRY, 1988, 31 (12) : 2235 - 2246
  • [10] Structure-based activity prediction for an enzyme of unknown function
    Hermann, Johannes C.
    Marti-Arbona, Ricardo
    Fedorov, Alexander A.
    Fedorov, Elena
    Almo, Steven C.
    Shoichet, Brian K.
    Raushel, Frank M.
    [J]. NATURE, 2007, 448 (7155) : 775 - U2