The bacteriophage T4 head is an elongated icosahedron packed with 172 kb of linear double-stranded DNA and numerous proteins. The capsid is built from three essential proteins: gp23*, which forms the hexagonal capsid lattice; gp24*, which forms pentamers at 11 of the 12 vertices; and gp20, which forms the unique dodecameric portal vertex through which DNA enters during packaging and exits during infection. Intensive work over more than half a century has led to a deep understanding of the phage T4 head. The atomic structure of gp24 has been determined. A structural model built for gp23 using its similarity to gp24 showed that the phage T4 major capsid protein has the same fold as numerous other icosahedral bacteriophages. However, phage T4 displays an unusual membrane and portal initiated assembly of a shape determining self-sufficient scaffolding core. Folding of gp23 requires the assistance of two chaperones, the Escherichia coli chaperone GroEL acting with the phage-coded gp23-specific cochaperone, gp31. The capsid also contains two nonessential outer capsid proteins, Hoc and Soc, which decorate the capsid surface. Through binding to adjacent gp23 subunits, Soc reinforces the capsid structure. Hoc and Soc have been used extensively in bipartite peptide display libraries and to display pathogen antigens, including those from human immunodeficiency virus (HIV), Neisseria meningitides, Bacillus anthracis, and foot and mouth disease virus. The structure of Ip1*, one of a number of multiple (>100) copy proteins packed and injected with DNA from the full head, shows it to be an inhibitor of one specific restriction endonuclease specifically targeting glycosylated hydroxymethyl cytosine DNA. Extensive mutagenesis, combined with atomic structures of the DNA packaging/terminase proteins gp16 and gp17, elucidated the ATPase and nuclease functional motifs involved in DNA translocation and headful DNA cutting. The cryoelectron microscopy structure of the T4 packaging machine showed a pentameric motor assembled with gp17 subunits on the portal vertex. Single molecule optical tweezers and fluorescence studies showed that the T4 motor packages DNA at the highest rate known and can package multiple segments. Förster resonance energy transfer-fluorescence correlation spectroscopy studies indicate that DNA gets compressed in the stalled motor and that the terminase-to-portal distance changes during translocation. Current evidence suggests a linear two-component (large terminase plus portal) translocation motor in which electrostatic forces generated by ATP hydrolysis drive DNA translocation by alternating the motor between tensed and relaxed states.
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http://dx.doi.org/10.1016/B978-0-12-394621-8.00018-2 | DOI Listing |
Probl Radiac Med Radiobiol
December 2024
State Institution «National Research Center for Radiation Medicine of the National Academy of Medical Sciences of Ukraine», 53 Yuriia Illienka Str., Kyiv, 04050, Ukraine.
Objective: to investigate the reciprocal impact on the genome of malignant and normal human peripheral bloodlymphocytes under their co-culture and the possibility to modify the effects by astaxanthin.
Methods: Separate and joint/separate culturing of peripheral blood lymphocytes (PBL) of the chronic lymphocyticleukemia (CLL) patients (n = 6) and conditionally healthy individuals (n = 6), Comet assay method, fluorescencemicroscopy with automated software for the analysis of results, statistical methods.
Results: Both direct and rescue tumour-induced bystander effects were observed under the joint/separate culturing of blood lymphocytes of conditionally healthy individuals (the bystander cells) and blood cells from CLL patients(the inducer cells).
Probl Radiac Med Radiobiol
December 2024
Educational and Scientific Center «Institute of Biology and Medicine» of the Taras Shevchenko Kyiv National University, 64/13 Volodymyrska Str., Kyiv, 01601, Ukraine.
Objective: to investigate changes in DNA methylation in bystander and inducer cells during the manifestation ofdirect and rescue bystander effects.
Methods: Separate and co-cultivation of peripheral blood lymphocytes (PBL) of 10 conditionally healthy individuals; γ-quantum irradiation (IBL-237C emitter); modified comet electrophoresis method (Comet assay) under neutralconditions using the methylation-sensitive restriction enzyme HpaII; fluorescence microscopy with an automatedcomputer software system for analyzing the results; statistical methods.
Results: The level of DNA methylation in PBL was quantitatively assessed using DNA migration parameters inagarose gel: the length of the comet tail (in μm), the percentage of DNA in the tail part of the comet, and TailMoment (TM), which simultaneously takes into account both the amount of DNA in the tail part of the comet andthe length of the tail.
Adv Neonatal Care
December 2024
Author Affiliations: Department of Family and Community Health Nursing, Marcella Niehoff School of Nursing, Loyola University Chicago, Maywood, Illinois (Drs Griffith, and Tell, Mrs Ford, and Dr Janusek); Department of Internal Medicine, Division of Infectious Disease, Rush University, Chicago, Illinois (Dr Green); Division of Neonatology, Loyola University Medical Center, Maywood, Illinois (Mr Bohan, Mrs Grunwaldt, and Dr Amin); Nursing Research, Children's Wisconsin, Milwaukee, Wisconsin (Dr White-Traut); and Women, Children and Family Health Science, College of Nursing, University of Illinois at Chicago, Chicago, Illinois (Dr White-Traut).
Background: Early life stress exposure in preterm infants may alter DNA methylation of NR3C1 and HSD11B2, disrupting neurobehaviors needed for oral feeding (PO) skill development.
Purpose: To (1) examine the feasibility of the study protocol; (2) describe early life stress, DNA methylation of NR3C1 and HSD11B2, and PO skill development; and (3) explore the association between DNA methylation of NR3C1 and HSD11B2 and infant characteristics, early life stress, and PO skill development.
Method: We employed a longitudinal descriptive pilot study (N = 10).
J Cancer Res Clin Oncol
December 2024
Department of Respiratory Medicine, The Fuyang Affiliated Hospital of Anhui Medical University, Fuyang, 236000, Anhui, China.
Purpose: This study aims to investigate the biological roles and molecular mechanisms of Cathepsin G (CTSG) in the progression of non-small cell lung cancer (NSCLC).
Methods: Western blotting and immunohistochemistry analyses of clinical samples were performed to determine the expression levels of CTSG in patients with NSCLC. Bioinformatic analysis of clinical datasets was conducted to evaluate the correlation between CTSG and lymph node metastasis, tumor stage, and immune cell infiltration.
Chembiochem
December 2024
Hunan University, College of Chemistry and Chemical Engineering, Yuelu, 410082, Changsha, CHINA.
Adeno-associated virus (AAV) has emerged as a powerful and effective tool for the delivery of exogenous genes into various cells or tissues. To improve the gene delivery efficiency, as well as the safety and specificity of AAV's cell-targeting capabilities, extensive investigations have been conducted into its molecular biological characteristics, including capsid structure, cellular tropism, and the mechanisms underlying its entry, replication, DNA packaging, and capsid assembly. Significant differences exist between human and non-human primate AAVs regarding tissue targeting and transduction efficiency.
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