Surface Plasmon Resonance Sensors for Biomolecular Chirality

被引:0
|
作者
Liu, Mingzhao [1 ]
Lu, Fang [1 ]
Tian, Ye [1 ]
Su, Dong [1 ]
Gang, Oleg [1 ]
机构
[1] Brookhaven Natl Lab, Ctr Funct Nanomat, Upton, NY 11973 USA
关键词
CIRCULAR-DICHROISM;
D O I
10.1149/07707.0029ecst
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
A chiral object, i.e., one that is distinguishable from its mirror image, interacts differently with photons of left-hand (+) and right-hand (-) circular polarizations. The difference in the absorption part is known as circular dichroism ( CD), which is usually observed for biomolecules with one or more chiral centers and is widely used to probe their molecular stereometry. Such probing has an increasingly broad importance for biomedical and pharmacological fields due to synthesis/separation/detection of homochiral species, biological role of chiral organization, and structural response to environmental conditions and enantiomeric drugs. Recent theoretical and experimental works demonstrated that the CD signal from chiral organic molecules could appear in the plasmonic band when they are coupled with plasmonic particles. Here report an intriguing case in which non-chiral plasmonic nanoparticles are surrounded by a monolayer of DNA molecules that have chirality arising from its helix structure and individual nucleobases. We identify gold/silver core/shell nanocubes as most effective by providing a giant, 2 orders of magnitude CD enhancement in a near-visible region, while DNA's native CD signal appears at much higher energy. The discovered phenomenon opens novel opportunities in ultrasensitive probing of biomolecules and for novel optical nanomaterials based on the chiral elements.
引用
收藏
页码:29 / 34
页数:6
相关论文
共 50 条
  • [1] Biomolecular discrimination analyses by surface plasmon resonance
    Gopinath, Subash C. B.
    Kumar, Penmetcha K. R.
    [J]. ANALYST, 2014, 139 (11) : 2678 - 2682
  • [2] Design of Surface Plasmon Resonance (SPR) Sensors for Highly Sensitive Biomolecular Detection in Cancer Diagnostics
    Sasidevi, S.
    Kumarganesh, S.
    Saranya, S.
    Thiyaneswaran, B.
    Shree, K. V. M.
    Sagayam, Martin K.
    Pandey, Binay Kumar
    Pandey, Digvijay
    [J]. PLASMONICS, 2024,
  • [3] Surface plasmon resonance and biomolecular interaction analysis.
    Wang, L
    Tao, ZL
    [J]. PROGRESS IN BIOCHEMISTRY AND BIOPHYSICS, 1996, 23 (06) : 483 - 487
  • [4] The characterization of biomolecular secondary structures by surface plasmon resonance
    May, LM
    Russell, DA
    [J]. ANALYST, 2002, 127 (12) : 1589 - 1595
  • [5] Surface plasmon resonance instrument to detect biomolecular interactions
    Chiang, C. L.
    Shih, H. C.
    Chou, T. K.
    Yang, C. T.
    [J]. PROCEEDINGS OF THE 35TH INTERNATIONAL MATADOR CONFERENCE: FORMERLY THE INTERNATIONAL MACHINE TOOL DESIGN AND RESEARCH CONFERENCE, 2007, : 11 - +
  • [6] Surface plasmon resonance sensors: review
    Homola, J
    Yee, SS
    Gauglitz, G
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 1999, 54 (1-2) : 3 - 15
  • [7] Nanopyramid surface plasmon resonance sensors
    Chung, Pei-Yu
    Lin, Tzung-Hua
    Schultz, Gregory
    Batich, Christopher
    Jiang, Peng
    [J]. APPLIED PHYSICS LETTERS, 2010, 96 (26)
  • [8] Localized Surface Plasmon Resonance Sensors
    Mayer, Kathryn M.
    Hafner, Jason H.
    [J]. CHEMICAL REVIEWS, 2011, 111 (06) : 3828 - 3857
  • [9] Bloch Surface Wave Resonance Based Sensors as an Alternative to Surface Plasmon Resonance Sensors
    Gryga, Michal
    Ciprian, Dalibor
    Hlubina, Petr
    [J]. SENSORS, 2020, 20 (18) : 1 - 16
  • [10] Surface plasmon resonance sensors: Temperature effects
    El Barghouti, Mohamed
    Houari, Fatima
    Talbi, Abdelkrim
    Mir, Abdellah
    Akjouj, Abdellatif
    [J]. OPTICAL MATERIALS, 2024, 155