Team:NYMU-Taipei/immunological-solution

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Background

For delivering the magnetotactic bacteria into the human brain and inducing an optogenetic response being our general concept, we, - the NYMU-Taipei 2011 team - have tried hard focusing on eliminating the immune responses in brain at the same time.


Brain Inflammation

The brain is considered an immune privileged organ in that (i) it is separated from the rest of the body by a blood-brain-barrier, (ii) the relative absence of MHC class I and II expression on central nervous system (CNS) cells, and (iii) lack of abundant antigen presenting cells which are required for the generation of an adaptive immune response.


Hence, we suppose that the brain provides a pleasant, nurturing environment for parasites (bacteria in our case) due to structures that prevent many of the immunocytes from entering.


However, in spite of these facts, activated immunocytes such as T and B lymphocytes, monocytes, macrophages, and complement proteins readily accumulate in our brain once it is infected or injuried. Microglial cell, tissue macrophages of brain, express most common macrophage markers provides the first line of defense in response to pathogens and neuronal injury. As such they can produce a wide variety of cytokines, proteases, etc….


Cytokines - the key immune regulatory factors -, regulate communication between immune cells. There are cytokines such as tumor necrosis factor α (TNF), transforming growth factor β (TGF-β), interleukin 1 (IL-1), IL-6, IL-10 and IL-12,etc... Among these cytokines, our team has performed ELISA to detect the concentration of IL-6, cytokine secreted by microglia cells when the brain tissue is infected or damaged to stimulate downstream immune responses and promote inflammation, and to confirm that our construct and design does decrease immune response in brain. The experience and data is shown is Figure<>.

Fig. structure of IL-6

Fig. The process of immune responses triggered when being infected.


The complement system, another core component of the innate immune response, and is consisted of small proteins found in blood. It has been confirmed that it can be activated and that it induces subsequence inflammation in the CNS. When being stimulated, proteases in the system cleave specific proteins to release cytokines, creating an amplifying cascade of further cleavages that results in the formation of membrane-attack-complex and ultimately pathogens elimination.




Fig. The forming of membrane-attack-complex (MAC) cascades.

Additionally, phagocytic cells including macrophages and neutrophils, can engulf and kill our bacteria.


Magnetotactic Bacteria

Magnetospirillum magneticum strain AMB-1, it is an aquatic, motile, Gram-negative bacteria that usually resides in fresh water columns. It has no known pathogenic activity and is well regarded by many scientists for its safety. Still, we’d regard that there are several core issues associated with what we have mentioned above.


To deal with problems, we have come up with several strategies to decrease and avoid immune responses.The ideas are (i) to express capsular polysaccharides of Klebsiella pneumonia and, (ii) being shielded in liposome.


(i)Klebsiella pneumonia is a Gram-negative opportunistic pathogen and a common cause of nosocomial infections. It possesses a polysaccharide capsule that is considered to be a major pathogenicity factor and the main contributing factor to its evasion ability from macrophages. However, expressing the capsule of K. pneumonia isn’t something easy. There are 77 different capsular antigens on the capsule, and certain serotypes are associated with certain infection sites. This would be a relatively huge challenge for us.


(ii)Liposomes have been wildly studied and suggested as a vehicle for drug delivery system, it seems that this biocompatible, biodegradable lipid bilayer is our good choice. Still, being restricted to the short life time and the cost, we chose not to continue on the path.


These strategies hold both advantages and drawbacks. After careful consideration, we have decided to use the system the Warsaw 2010 iGEM team project developed – BactoDHL, an invasive delivery system based on the expression of minC, Inv, and LLO- and designed an in vitro symbiosis mechanism within glial cell.


Delivering bacteria into human body may seem insane. But knowing that the total number of microbes that colonize the surface of our bodies is ten times greater than the total number of human, cell makes the whole thing less horrifying. The largest collection of symbiotic microbes reside in our gut, harbors trillions of bacteria, representing hundreds of species. However, scientists have not yet found any symbiotic bacteria residing in the human brain that does not cause infections. This year, the NYMU-Taipei team is thinking about enabling our magnetotactic bacteria being engulfed by a human glial cell in advance before being injected in to human brain.

Our two constructs

  • introduction to pYMB

MinC

In E.coli, the min system cooperates with the nucleoid to direct the placement of the division septum to midcell. MinC, the division inhibitor, is one of the gene products of the min system. Studies revealed that MinC interacts directly with FtsZ and antagonizes FtsZ assembly. While overexpression of minC would lead to septation inhibition at all potential division sites, a circumstance of filamentation. We have cloned the minC gene from E.coli K-12 strain MG1655 by performing PCR, with a single nucleotide point mutation to get rid of the PstI enzyme cutting site. We have constructed the tetracycline-regulatable system to regulate the expression of minC protein. Fig. page of tet-R protein Fig. growth curve of AMB-1

Fig. growth curve of AMB-1 after transformed with minC-pYMB plasmid. Fig. filamentation of AMB-1


Invasin & Listeriolysin O

An essential virulence attribute for Yersinia enterocolitica is its ability to invade the mammalian cell. Invasin, a protein encoded by inv., is an outer membrane protein found on the surface of Y. enterocolitica that is responsible for its binding property.

Listeriolysin O (LLO) is a hemolysin produced by the bacteria Listeria monocytogenes, a pathogen that is responsible for listeriosis. LLO is activated within phagosomes of cells that have phagocytosed L.monocytogenes cells, and lyses the membrane of phagosome. The bacteria is then able to escape into the cytosol without damaging the plasma membrane, and grow intracellularly. This would result in the protection from extracellular immune system. PDB structure. Fig. DIC video Fig. ELISA result


Reference & Acknowledgement

  • Huaijin Zhou and Joe Lutkenhaus 2005 MinC Mutants Deficient in MinD- and DicB-Mediated Cell Division Inhibition Due to Loss of Interaction with MinD, DicB, or a Septal Component. Department of Microbiology, Molecular Genetics and Immunology, University of Kansas Medical Center,Kansas City, Kansas
  • Second-generation tetracycline-regulatable promoter: repositioned tet operator lements optimize transactivator synergy while shorter minimal promoter offers tight basal leakiness
  • The Yersinia enterocolitica inv gene product is an outer membrane protein that shares epitopes with Yersinia pseudotuberculosis invasin.
  • Central Nervous System Diseases and Inflammation.
  • Yu-Kuo Tsai,1 Chang-Phone Fung,2* Jung-Chung Lin,3 Jiun-Han Chen,4 Feng-Yee Chang,3 Te-Li Chen,2 and L. Kristopher Siu1,5* 2011 Klebsiella pneumoniae Outer Membrane Porins OmpK35 and OmpK36 Play Roles in both Antimicrobial Resistance and Virulence_† Division of Infectious Diseases, National Health Research Institutes, Miaoli, Taiwan1; Section of Infectious Diseases, Department of Medicine, Taipei Veterans General Hospital, and National Yang-Ming University, Taipei, Taiwan2; Division of Infectious Diseases and Tropical Medicine, Department of Internal Medicine, Tri-Service General Hospital, Taipei, Taiwan3; Department of Medical Laboratory Science and Biotechnology, Yuanpei University, Hsinchu, Taiwan4; and Graduate Institute of Basic Medical Science, China Medical University, Taichung, Taiwan5
  • Chang-Phone Fung,1 Bor-Shen Hu,2 Feng-Yee Chang,3 Sai-Cheong Lee,4 Benjamin In-Tiau Kuo,1 Monto Ho,5 L. K. Siu,5 and Cheng-Yi Liu1 A 5-Year Study of the Seroepidemiology of Klebsiella pneumoniae: High Prevalence of Capsular Serotype K1 in Taiwan and Implication for Vaccine Efficacy. 1Section of Infectious Diseases, Department of Medicine, Taipei Veterans General Hospital and National Yang-Ming University,2Taichung Veterans General Hospital, 3Tri-Service General Hospital,

4Chang Gung Memorial Hospital-Keelung, and 5Division of Clinical Research, National Health Research Institute,Taipei, Taiwan

  • Jian Xu1,2#, Michael A. Mahowald1#, Ruth E. Ley1,Catherine A. Lozupone3, Micah Hamady4, Eric C. Martens1,Bernard Henrissat5,6, Pedro M. Coutinho5,6, Patrick Minx2,Philippe Latreille2, Holland Cordum2, Andrew Van Brunt2,Kyung Kim2, Robert S. Fulton2, Lucinda A. Fulton2, Sandra W. Clifton2, Richard K. Wilson1,2, Robin D. Knight7, Jeffrey I. Gordon1* Evolution of Symbiotic Bacteria in the Distal Human Intestine1 Center for Genome Sciences, Washington University School of Medicine, St. Louis, Missouri, United States of America, 2 Genome Sequencing Center, Washington University School of Medicine, St. Louis, Missouri, United States of America, 3 Department of Molecular, Cellular and Developmental Biology, University of Colorado, Boulder, Colorado, United States of America, 4 Department of Computer Science, University of Colorado, Boulder, Colorado, United States of America, 5 Universités Aix-Marseille I and II, Marseille, France, 6CNRS, UMR6098, Marseille, France, 7 Department of Chemistry and Biochemistry, University of Colorado, Boulder, Colorado, United States of America