Showing posts with label virus. Show all posts
Showing posts with label virus. Show all posts

Tuesday, 25 February 2025

Monkey-Pox: A Silent Return | Chapter 3 | Disease and Health: Research Developments Vol. 3

Monkeypox is a viral zoonotic disease caused by the monkeypox virus, part of the Orthopoxvirus genus, primarily found in Central and West Africa. Its symptoms are similar to smallpox but generally milder, including fever, lymphadenopathy, and a rash that progresses from macules to pustules. The virus spreads through direct contact with infected animals or humans, raising public health concerns, especially with recent outbreaks in non-endemic areas.

 

There are two monkeypox clades: Central African and West African, with the former leading to more severe illness. The virus enters through broken skin or mucous membranes, spreads via the lymphatic system, and triggers an immune response crucial for infection control. Immunocompromised individuals face higher risks of complications.

 

Recent outbreaks have seen increased human-to-human transmission, notably among specific demographics. Diagnosis involves clinical evaluation and lab tests, while treatment focuses on symptom management. Preventive strategies include vaccinations for high-risk groups, public education, enhanced surveillance, and inter-agency collaboration to control outbreaks effectively. Ongoing research and public health efforts remain essential as the situation evolves.

 

Author (s) Details

 

Avi Mittal
Pt. BD Sharma PGIMS, Rohtak, India.

 

Mahi Chauhan
Pt. BD Sharma PGIMS, Rohtak, India.

 

Mehak Kalwana
Pt. BD Sharma PGIMS, Rohtak, India.

 

Esha
Pt. BD Sharma PGIMS, Rohtak, India.

 

Shailesh Mittal
Maharaja Agrasen Medical College, Agroha, India.

 

Please see the book here:- https://doi.org/10.9734/bpi/dhrd/v3/3314

Saturday, 22 February 2025

Evaluating the Growth and Yield Variability of Selected Cowpea (Vigna unguiculata L. Walp.) Cultivars Infected with Cowpea Aphid-borne Mosaic Virus and Southern Bean Mosaic Virus | Chapter 1 | Current Research Progress in Agricultural Sciences Vol. 9

Cowpea is susceptible to a complex of insect pests and diseases and they attack the crop from vegetative stage to storage, which forms part of the most important impediments to its profitable production. Virus diseases are the most damaging diseases of cowpea and represent a significant proportion of losses regarding the potential value of the crop in sub-Saharan Africa. This study was, therefore, conducted to determine the resistance of selected cowpea cultivars to single and mixed infections of CABMV and SBMV and to ascertain the effects that these two viruses have on the selected cowpea cultivars in single and mixed infections. Eight cowpea (Vigna unguiculata L. Walp.) cultivars were evaluated for Cowpea Aphid-Borne Mosaic Virus (CABMV), Southern Bean Mosaic Virus (SBMV), CABMV+SBMV, and SBMV+CABMV resistance under greenhouse conditions at the School of Agriculture and Agricultural Technology Minna, Nigeria in 2016 (lat.9o40ʹN; long 6o30ʹE at an altitude of 220 m.a.s.l). Virus-infected plants were evaluated independently using a Completely Randomized Design with three replications. In single infections, cowpea seedlings were inoculated at 10 days after sowing (DAS), while in mixed infections the second virus inoculation was performed at 21 DAS. Disease incidence, symptom severity, plant growth and yield characters were recorded. Disease severity was evaluated based on a visual scale of 1-5. The data were subjected to analysis of variance and Duncan’s Multiple Range Test was used for mean separation. Results showed that one hundred percent infection was obtained regardless of the cultivar. The single and double virus infections reported in this study had significant and different effects on the eight cowpea cultivars evaluated which can be attributed to the different susceptibility levels of the cultivars to the respective viruses. High disease severity with a symptom score of 4.0 was recorded for all the cowpea cultivars infected with CABMV alone and CABMV+SBMV, while moderate resistance with a symptom score of 3.0 was recorded only in cultivars IT09K-231-1 and IT10K-973-1 to SBMV, and in IT07K-299-6 and IT10K-973-1 to SBMV+CABMV. Through the four virus treatments, seed weight per plant was significantly (p<0.05) highest in IT10K-843 infected with CABMV which, produced 3.5 g; cultivar, IT07K-299-6 inoculated with SBMV produced 4.9 g, while IT10K-973-1 under CABMV+SBMV infections produced 4.9 g; and IT07K-298-9 infected with SBMV+CABMV produced 4.4 g. The cowpea cultivar IT07K-299-6 which gave the highest seed weight under single and double virus infections can be exploited in hybridization studies to develop resistant cowpea varieties for use by farmers. Intensive biotechnological research that will result in the development of cowpea cultivars with multiple resistance to economically important viruses should be explored.

 

Author (s) Details

E. W. Mamman
Department of Crop Production, Federal University of Technology, P.M.B. 65, Minna, Niger State, Nigeria.

 

M. T. Salaudeen
Department of Crop Production, Federal University of Technology, P.M.B. 65, Minna, Niger State, Nigeria.

 

A. C. Wada
Department of Crop Production, Federal University of Technology, P.M.B. 65, Minna, Niger State, Nigeria.

 

A. S. Paiko
Department of Pest Management Technology, Niger State College of Agriculture, P.M.B. 109, Mokwa, Nigeria.

 

Please see the book here:- https://doi.org/10.9734/bpi/crpas/v9/3093

Thursday, 2 November 2023

History of Early Invention of Covid-19 Vaccines which Saved Mankind from Deadly Global Pandemic | Chapter 3 | Advanced Concepts in Pharmaceutical Research Vol. 2

 The aim of the study was to discuss and resolve different Corona bacterium vaccines based on how they equate to other viruses in terms of their irritant S proteins. A vaccination is a in a way medication used to strengthen the invulnerable system's defenses against spreading organisms including viruses and microorganisms. The World Health Organization describes them as "individual of the most productive ways to prevent afflictions." The human body has an innate watchful mechanism against injurious pathogens like bacteria and viruses, making it exceptionally opposing to illness. Covid-19 pandemic amazed and locked one in year 2019 and 2020. Maximum death happen in USA followed by Italy and Spain. Collecting data of Covid 19 immunization preparation from cyberspace and other all social network beginnings and afterwards explaining them. The data examined here cover the Covid 19 vaccine pre creation. According to available facts, in Germany and UK, the vaccine developed from chimpanzee’s Corona bug is ahead of every other type before expected time they got consent of even testing on human volunteers. Even though the complete scientific community is occupied to develop a cure and treatment for COVID 19 on an urgent support, a fully functional, persuasive specific cure won't be accessible to the society for about a year. Until therefore, social isolation and confinement in isolation are the only methods that can stop the disease's spread, depression, and mortality across the whole planet.

Author(s) Details:

Rajeev Shah,
Department of Microbiology, Kiran Medical College, Surat, India.

Please see the link here: https://stm.bookpi.org/ACPR-V2/article/view/12335


Saturday, 16 September 2023

Rhizobium and Virus Interaction on Growth and Yields of Cowpea | Chapter 11 | Emerging Issues in Agricultural Sciences Vol. 7

 This review has as allure focus microbe-microbe interplay and its effects on swollen object and yields of cowpea, with a view to analyzing the impacts on sustainability of food production arrangement. Cowpea is a nutritious piece that is widely devoured in tropical and subtropical poor countries with its own government. Pathogens and pests to a degree bacteria, viruses, fungus, and bugs can harm it at any stage of happening. Microbes, plants, and animals all communicate in both isolated and complex methods. To complete the food web process, these interplays might be plant-plant, plant-microbe, bacteria-microbe, or microbe-microbe-plant. While few interactions are active and helpful to the relationship's shareholders, others are poisonous and detrimental.  Knowledge of specific relationships might aid embellish productivity and allow for the development of novel tactics for plant guardianship, parasite control, and land yield increase. Hence this article determine the interaction of rhizobium and virus on cowpea swollen object and yields with a view to judging their contributory effects and determine their individual potency in the interplay.

Author(s) Details:

Oyatokun, O. S.,
Department of Crop and Animal Science, Faculty of Agriculture, Ajayi Crowther University, P.M.B. 1066, Oyo, Nigeria.

Oyelakin, F. O.,
Department of Crop and Animal Science, Faculty of Agriculture, Ajayi Crowther University, P.M.B. 1066, Oyo, Nigeria.

Akanbi, W. B.,
Department of Crop and Animal Science, Faculty of Agriculture, Ajayi Crowther University, P.M.B. 1066, Oyo, Nigeria and Department of Crop Production and Soil Science, Ladoke Akintola University of Science and Technology, Ogbomoso, Oyo State, Nigeria.

Adigun, M. A.,
Department of Crop and Animal Science, Faculty of Agriculture, Ajayi Crowther University, P.M.B. 1066, Oyo, Nigeria.

Ajiwe, S. T.,
Department of Crop and Animal Science, Faculty of Agriculture, Ajayi Crowther University, P.M.B. 1066, Oyo, Nigeria.

Please see the link here: https://stm.bookpi.org/EIAS-V7/article/view/11856

Wednesday, 24 May 2023

Omicron: A Grim Reality Amidst COVID-19 | Chapter 2 | Novel Aspects on Pharmaceutical Research Vol. 2

 Since the disruption of bubonic plague Covid-19, that has killed in addition to 5.57 heap crowd general, the world has existed depressed for ancient times two and a half age. The spread of new coronavirus Omicron modifications after beginning, suspect, gamma, and accumulation of solid resumes. The virus, that was found in Botswana and South Africa in November, has spread briskly during the whole of the world in current weeks, outpacing some earlier popular coronavirus variant. When distinguished to other variations, Omicron has happened proved expected highly communicable and less approachable to vaccines. November 26, 2021, was when the omicron variant was top-secret as a variant of concern for one WHO (CDC, 2021) [1]. The aim of this study search out support a brief survey of what we then know about the Omicron bug and what more needs expected well-informed about allure various variations.

Author(s) Details:

Saima Mazhar,
Department of Periodontology, Bahria University Health Sciences, Pakistan.

Farzeen Tanwir,
Department of Periodontology, Bahria University Health Sciences, Pakistan.

Ayesha Mehwish,
Department of Anatomy, Bahria University Health Sciences, Pakistan.

Yasmeen Mahar,
Department of Anatomy, Bahria University Health Sciences, Pakistan.

Anum Baqar,
Department of Prosthodontics, Bahria University Health Sciences, Pakistan.

Maryam Faiz Quereshi,
Department of Anatomy, Western University of Health Sciences, Pomona, California, USA.

Areeba Younis,
Department of Anatomy, Bahria University Health Sciences, Pakistan.

Ariba Naveed,
Department of Anatomy, Bahria University Health Sciences, Pakistan.

Syed Wajahat Haseeb,
Department of Anatomy, Bahria University Health Sciences, Pakistan.

Mahail Khan,
Department of Anatomy, Bahria University Health Sciences, Pakistan.

Mariya Azam Khattak,
Department of Anatomy, Bahria University Health Sciences, Pakistan.

Please see the link here: https://stm.bookpi.org/NAPR-V2/article/view/10595

Friday, 13 January 2023

Nanoparticles against Viruses | Chapter 3 | Research Advances in Microbiology and Biotechnology Vol. 1

 The likelihood of utilizing nanoparticles against viruses is confirmed apiece following. At the beginning of the phase (Section 2) the characteristics of singular process of transfer of bent push (spin supercurrent) are deliberate. Then it is proved in Section 3 that the effect of mineral nanoparticles on organic wholes can be acted by spin supercurrent. Further, it is proved in Section 4 that spin supercurrent concede possibility influence viruses. Thus, from dossier bestowed in Sections 3 and 4 it trails: ingot nanoparticles grant permission influence viruses.


Author(s) Details:

Liudmila B. Boldyreva,
The State University of Management, Moscow, Russia.

Please see the link here: https://stm.bookpi.org/RAMB-V1/article/view/8983

Saturday, 8 October 2022

Virus-mediated Autoimmunity, Immune Tolerance and Biologic Treatment | Chapter 3 | Research Aspects in Biological Science Vol. 9

 The autoimmune disease process can occur in a variety of chronic human disorders. As a group of diseases, autoimmune disorders are the third most frequent cause of sickness and death in the Western World. The majority of autoimmune illnesses' underlying mechanisms are still unclear. The most significant contributor to the emergence of autoimmune illnesses, above genetic factors and cytokine activity, is viral infection. There are a number of hypothesised mechanisms by which viral infection could impair self-tolerance and set off an autoimmune cascade, ultimately leading to the destruction of a particular type of cell or an entire body organ. The many immune systems and additional potential processes, such as molecular mimicry, bystander activation, and epitope dissemination, can be used to understand the autoimmune onslaught. In addition to genetic and viral factors, other environmental factors such as bacterial, parasitic, and fungal infections are also involved. However, a number of animal models have been examined and offer convincing proof that viruses contributed to AIDs as well as hastened and bigger lesions in environments where self-tolerance was compromised. In this review, we examined virus-induced autoimmunity and the underlying molecular mechanism. We also discussed the several viruses, such as the rubella virus, enteroviruses, measles virus, human T-lymphotropic virus type 1, human cytomegalovirus, human herpes virus-6, Epstein-Barr virus, rotavirus, and others, that influence the development of AIDs as well as its biologic therapy.


Author(s) Details:

Arslan Habib,
Laboratory of Molecular Immunology, School of Life Sciences, Fudan University, Shanghai, China.

Riffat Iqbal,
Department of Zoology, Government College University, Lahore, Pakistan.

Muhammad Usman Taj,
Department of Fisheries and Aquaculture, University of Veterinary and Animal Sciences, Lahore, Pakistan.

Rabia Jahangir,
Department of Zoology, Government College University, Lahore, Pakistan.

Abdul Rehman,
Department of Zoology, Pakistan Institute of Applied and Social Sciences, Kasur, Pakistan.

Ansa Batool,
Department of Zoology, Pakistan Institute of Applied and Social Sciences, Kasur, Pakistan.

Haleema Sadia Jafar,
Department of Zoology, Pakistan Institute of Applied and Social Sciences, Kasur, Pakistan.

Abubakar Muhammad Arshid,
Department of Zoology, Pakistan Institute of Applied and Social Sciences, Kasur, Pakistan.

Shumaila Murtaza,
Department of Zoology, Pakistan Institute of Applied and Social Sciences, Kasur, Pakistan.

Shamim Allah Dita,
Department of Zoology, Pakistan Institute of Applied and Social Sciences, Kasur, Pakistan.                          


Please see the link here: https://stm.bookpi.org/RABS-V9/article/view/8343

Highlighting the Importance of ATP Energy in Biology with Regard to Viruses | Chapter 1 | Research Aspects in Biological Science Vol. 9

 In light of the corona virus Covid 19's pandemic spread, biologists continue to disagree about whether viruses are alive or not. The argument behind this, however, is that since viruses cannot produce adenosine triphosphate (ATP) on their own, they must rely on other living bacteria that can in order to acquire the energy that ATP provides upon hydrolysis. This distinction is the main reason why viruses are restricted to an ill-defined region that separates living things from nonliving objects. However, it appears that viruses have a natural ability to get beyond this impenetrable barrier and make a connection with the ATP molecule, which powers their operations. A review of these difficulties in relation to physics, biochemistry, and microbiology is provided here.


Author(s) Details:

Fritz Lewertoff,
Service de Recherche Pédagogique, Québec, Canada.

Please see the link here: https://stm.bookpi.org/RABS-V9/article/view/8340

Tuesday, 10 August 2021

COVID-19 Threat to Major Global Urban Centers and Crowded Rural Areas| Chapter 20 | Highlights on Medicine and Medical Science Vol. 11

 The planet is being put to the ultimate test by a new and deadly enemy: the COVID-19 epidemic. As COVID-19 spreads over the globe, the world faces major social, political, and economic ramifications. This article examines COVID-19's threat to major worldwide urban centres and crowded rural areas after an introduction and a brief epidemiological synopsis. COVID-19's global influence is unparalleled, particularly in large global cities, for a variety of reasons, including their status as international hotspot locations. Financial centres, heavily populated locations, and higher percentages of low-income individuals and families all draw entrepreneurs from around the world.


Author (s) Details

Dr. Jean-d'Amour K. Twibanire
Canam Bioresearch Inc. Winnipeg, MB. R3T 0P4, Canada

Nawal K. Paul
The American University of Integrated Sciences, Cole Bay, Sint Maarten.

View Book :- https://stm.bookpi.org/HMMS-V11/article/view/2513

Friday, 6 November 2020

A Novel Approach on Immunization by Replication- Competent, Controlled Viral Pathogen: Exploring for Diseases Refractory to Effective Conventional Vaccination? |Chapter 4| Current Topics in Medicine and Medical Research Vol. 8

 The first vaccine that targeted small pox in 1796 was studied by Edward Jenner. Overall, for disease prevention, vaccination has been a very good method. However, illnesses and disorders that can not be successfully avoided or treated by vaccines still occur more than two centuries after the first use of the vaccine. Unfortunately, global diseases, including influenza / flu, tuberculosis , malaria, HIV / AIDS, and oral and genital herpes, are diseases that have remained refractory to vaccination or are insufficiently protected against by vaccination. Although efforts to develop vaccines based on the "classical" model (described below) continue, it may also be necessary to consider novel approaches that may have the potential to induce superior immune responses qualitatively and/or quantitatively.


Our failure to recognise the molecular basis of current liveattenuated vaccine attenuation and immunogenicity is a key constraint in the development of novel vaccines against today and tomorrow's challenging infectious diseases. This is partly due to the empirical existence of their growth [1,2]. The majority of vaccines currently approved are either subunit vaccines (comprising isolated proteins or protein fractions) or attenuated types of microorganisms that cause disease. Pathogens are attenuated by their killing or by hereditary deficiency of their replicative ability. Although attenuation provides the protection needed, the ability of so-modified pathogens to induce robust inflammatory responses is almost universally compromised, which translates into suboptimal humoral and T-cell responses[3-6]. The comparison of immune responses elicited by a wild type pathogenic agent vs. those caused by an attenuated agent is obviously not feasible. Many studies, however, contrasted immune responses elicited by viral vectors that were attenuated but retained residual capacity to replicate and corresponding vectors that were incompetent for replication[7-10]. Results showed that attenuated viruses retaining some replication capacity induced immune responses that were more complete and more potent than non-replicating comparison viruses.

On the basis of these considerations and observations, we hypothesised that a genetically engineered viral pathogen that can be triggered transiently in an inoculation site region to (local) replicate will be a superior immunisation agent to a traditional vaccine with an efficiency approaching that of the corresponding wild type agent[11]. Here, replication is understood as agent propagation. Bramson[12] endorsed that full immune response can be obtained from immunisation with a disease-causing virus modified to subject replication-essential genes to the control of a non-lethal heat-activated gene switch in the presence of a drug-like compound.

How does one restrict a viral pathogen's replication to the area of the inoculation site as well as limit the length of its replication? It is well known that in the area in which they have been administered, viruses will not live, but will disperse inside the host organism. Therefore, in the inoculation site region but not elsewhere, an appropriate control mechanism will need to be capable of activating replication. It is believed that a physical "signal" that can be targeted at the inoculation site region will need to be responded to by such a control mechanism. The use of a highly heat-inducible heat shock protein gene (HSP) promoter to regulate the expression of replication-essential genes of a pathogenic virus is one possibility, representing perhaps the only possible solution available at this time. Some HSP promoters, such as the human HSP70B promoter, have very low basal activity, which can be induced by heat activation several thousand times [13,14]. Rohmer et al.[15] have produced novel gene transfer vectors for adenovirus that feature enhanced and strict control of transgene expression using promoter insulation from the HSP70B promoter. For gene therapy applications benefiting from external regulation of therapeutic gene expression or combination therapy with hyperthermia, these vectors have potential[16]. In all mammalian cell types, the promoters appear to be capable of being activated. A heat dose that is basically beyond the physiological range but can be easily tolerated by a human subject (44-450C for 5-10min) involves activation of the HSP70B promoter. If this is needed, the promoter could be changed so that it reacts to a lower heat dose[17]. In several ways, heat can be targeted. A simple and robust solution will include applying a heating pack in the case of intradermal or subcutaneous inoculation. Using well-known and inexpensive technology (of the kind used in commercial products such as ThermaCare), such a pack may be manufactured.

Safety from accidental transient activation or, worse, run-away activation will be the most critical problem with an immunisation agent that can be activated to replicate with near-wild type efficiency. The mode of regulation of HSP promoters emerges from a practical (not safety-related) issue that also needs to be answered. Exposure of a cell to heat (even prolonged heat) results in a heat shock transcription factor 1 (HSF1) transient activation that then binds to and mediates HSP promoter transcription. Within a few hours of heat activation at most, HSF1 returns to an inactive form. As a result, HSP promoters per se are not well suited to the control of a pathogen 's genes whose operation is required during most of the replication cycle or which need to be active at different cycle times. It has been suggested that adequate safety from inadvertent activation, whether due to exceptional circumstances ( e.g. ischemia, intoxication, etc.) or recombination events, could result from the use of a dual-responsive gene switch to control at least two viral pathogen replication-essential genes to be used as immunisation agents[11]. Dual-responsive gene switches activated by a combination of heat and a small-molecule regulator (SMR) have been previously described and are known to strictly control both in vitro and in vivo target gene expression [18-20]. The gene switches consist of I an SMR-activated transactivator expressed from a heat- and transactivator-activated promoter cassette, and (ii) a transactivator-responsive promoter to drive a gene of interest. Fig. represents a viral pathogen with two replication-essential genes controlled by a dual-responsive gene switch. 1A, and how the gene switch functions is shown in Fig. 1B. Upon administration to a selected inoculation region of such a replication-competent regulated pathogen, replication of the agent is activated by localised heat treatment, e.g. the application of a heating pack, in the presence of SMR. The SMR may be systemically administered or can be co-administered with the immunising agent. In the infected cells, the triggered gene switch will remain active until clearance of the SMR has occurred or the replicating agent has lysed the cells. The agent is safely disabled thereafter. Intentional re-activation of replication would be possible for as long as the agent remains in the inoculation zone.

Is building such replication-competent regulated viruses feasible? Are they likely to cause better immune reactions than traditional vaccines? We placed under the control of a dual-responsive gene switch (manuscript in preparation *) two replication-essential genes of a wild type strain of Herpes Simplex Virus 1 ( HSV-1). Antiprogestin mifepristone and closely related compounds (but not progestins) were activated by the transactivator incorporated in the latter gene switch. In vitro, in the presence of antiprogestin, the recombinant virus replicated nearly as effectively as the wild-type virus after heat activation, but not in the absence of either antiprogestin or heat treatment. In the mouse, replication of the virus was also rigorously regulated. The once-activated recombinant virus was substantially more protective than the corresponding non-replicating virus in immunisation / challenge experiments. These results encourage and require an examination of the full potential of the proposed approach to immunisation.





Agent                                                                                                                      Potential use 

HSV * regulated by replication-competent                                           Therapeutic or preventive

                                                                                                                      immunisation toward Oncolytic

                                                                                                                      Treatment HSV   

 

HSV * regulated by replication-competent                                          Anti-HIV / AIDS immunisation, flu,

Heterologous antigens are expressed (e.g., from                               Via tuberculosis, etc.  

HIV, the flu, M. tuberculosis)

Replication-competent HSV controlled * +                                          Immunization against the infectious pathogen co-infecting the virus                                                     (e.g. adenovirus, papilloma, polyoma, infecting bacterial pathogens that contain at                                               other herpesvirus etc.)
 least one viral pathogen   The replication-essential
gene that is regulated by the  The transfer of
dual-responsive genes (present in the

HSV that is controlled)

Replication-competent regulated HSV *                                                Immunization against the viral pathogen expressing a replication-essential gene                                                 co-infecting (basically any viral pathogen      
of a viral pathogen co-infecting under gene                                          capable of co-infection)                     
switch  regulation + viral pathogen co-infecting
with disabled  replication-essential genetic control


How broadly will this technology be applied? Only if the pathogen normally engages the host transcriptional machinery for the expression of its genes can replication of a viral pathogen be regulated by the above-described dual-responsive gene shift. At first sight, this limitation is less significant than one would expect (Table 1). There has been a long history of the use of viral vectors (replication-defective and attenuated) to express heterologous antigens [21,22]. As a potent immunisation platform, a replication-competent regulated virus can serve. Expression of heterologous antigens in the sense of vigorous viral replication is expected to result in superior immune responses for the reasons which were addressed at the beginning of this correspondence. In addition, via complementation, viral pathogens that do not use the host transcriptional machinery can be regulated. A replication-essential gene of such a virus and a co-infecting (replication-disabled or replication-competent-controlled) virus that expresses the replication-essential gene under the control of a dual-responsive gene switch can disable the gene product of such a virus. It is noted that if viral vectors are used as immunisation or oncolytic agents, the issue arises as to whether the effectiveness of these agents would be significantly diminished by pre-existing immunity. For HSV, our preferred backbone for managed virus construction, several studies have addressed this problem (cited in ref.9). The prevailing answer is that pre-existing immunity has little or only relatively minor effects on the immune response to antigens delivered by HSV or on the oncolytic HSV anti-tumor efficacy.

Author(s) Details

Richard Voellmy

Department of Physiological Sciences, University of Florida College of Veterinary Sciences, Gainesville, FL, USA and HSF Pharmaceuticals SA, La Tour-de-Peilz, Switzerland.

David C. Bloom

Department of Molecular Genetics & Microbiology, University of Florida College of Medicine, Gainesville, FL, USA.

Nuria Vilaboa
Hospital Universitario La Paz-IdiPAZ, Madrid, Spain and CIBER de Bioingenieria, Biomateriales y Nanomedicina, CIBER-BBN, Spain.

View Book :-
https://bp.bookpi.org/index.php/bpi/catalog/book/316