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貓冠狀病毒IgG免疫熒光玻片
【產(chǎn)品簡介】
【詳細說明】
貓冠狀病毒IgG免疫熒光玻片
Feline Coronavirus IgG IFA Substrate slide
廣州健侖生物科技有限公司
主要用途:用于檢測貓血清中貓冠狀病毒IgG抗體
產(chǎn)品規(guī)格:12 孔/張,10 張/盒
主要產(chǎn)品包括:包柔氏螺旋體菌、布魯氏菌、貝納特氏立克次體、土倫桿菌、鉤端螺旋體、新型立克次體、恙蟲病、立克次體、果氏巴貝西蟲、馬焦蟲、牛焦蟲、利什曼蟲、新包蟲、弓形蟲、貓流感病毒、貓冠狀病毒、貓皰疹病毒、犬瘟病毒、犬細小病毒等病原微生物的 IFA、MIF、ELISA試劑。
貓冠狀病毒IgG免疫熒光玻片
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JL-FL54 | 牛雙芽巴貝西蟲免疫熒光玻片 | babesia bigemina IFA Substrate slide |
JL-FL55 | 牛雙芽巴貝西蟲免疫熒光試劑盒 | babesia bigemina IFA Kit |
JL-FL56 | 牛巴貝西蟲免疫熒光玻片 | babesia bovis IFA Substrate slide |
JL-FL57 | 牛巴貝西蟲免疫熒光試劑盒 | babesia bovis IFA Kit |
JL-FL58 | 駑巴貝西蟲免疫熒光玻片 | babesia caballi IFA Substrate slide |
JL-FL59 | 駑巴貝西蟲免疫熒光試劑盒 | babesia caballi IFA Kit |
JL-FL60 | 馬泰勒蟲免疫熒光玻片 | theileria equi IFA Substrate slide |
JL-FL61 | 馬泰勒蟲免疫熒光試劑盒 | theileria equi IFA Kit |
JL-FL62 | 利什曼蟲IgG免疫熒光試劑盒 | Leishmania IgG IFA Kit |
JL-FL63 | 新孢子蟲IgG免疫熒光試劑盒(檢測狗) | Neospora caninum IgG IFA Kit |
JL-FL64 | 新孢子蟲IgG免疫熒光試劑盒(檢測馬) | Neospora caninum IgG IFA Kit |
JL-FL65 | 貓杯狀病毒IgG免疫熒光玻片 | Feline Calicivirus IgG IFA Substrate slide |
JL-FL66 | Feline Coronavirus IgG IFA Substrate slide | |
JL-FL67 | 貓皰疹病毒IgG免疫熒光玻片 | Feline Herpesvirus IgG IFA Substrate slide |
JL-FL68 | 犬瘟病毒IgG免疫熒光玻片 | Canine Distemper IgG IFA Substrate slide |
JL-FL69 | 犬細小病毒IgG免疫熒光玻片 | Canine Parvovirus IgG IFA Substrate slide |
二維碼掃一掃
【公司名稱】 廣州健侖生物科技有限公司
【】 楊永漢
【】
【騰訊 】 2042552662
【公司地址】 廣州清華科技園創(chuàng)新基地番禺石樓鎮(zhèn)創(chuàng)啟路63號二期2幢101-3室
【企業(yè)文化】
研究人員在針對這個問題進行研究時,意外發(fā)現(xiàn)CUBIC試劑中的氨基醇能夠將血紅素從血紅蛋白中提取出來,由此顯著提高器官的透明度。
他們用這個方法處理小鼠的大腦、心臟、肺、腎臟、肝臟甚至整個幼鼠和成年小鼠,得到了異常透明的小鼠。在此基礎上的光切(light-sheet)熒光顯微成像,獲得了非常清晰的3D圖像。為了測試這個方法的實用性,研究人員比較了糖尿病和非糖尿病小鼠的胰腺,發(fā)現(xiàn)它們的胰島存在明顯的差異,胰島是胰腺生產(chǎn)胰島素的結構。
CUBIC需要用試劑固定組織,所以不能用于活體生物。不過,CUBIC可以幫助人們深入了解器官的3D結構,以及特定基因在不同組織中的表達,文章的*作者Kazuki Tainaka說。“我們的方法能得到幾乎全身透明的幼鼠和成年小鼠。通過這個技術人們能觀察到組織里的細胞網(wǎng)絡,這是生物學和醫(yī)學領域的一個基本挑戰(zhàn)。”
“CUBIC可以用于3D病理學研究、解剖學研究和整個生物體的免疫組化分析。舉例來說,可以用CUBIC在細胞水平上觀察胚胎的發(fā)育,或者癌癥和自身免疫疾病的發(fā)展。深入理解疾病的過程,有助于我們開發(fā)新的治療策略。在單細胞水平上的全身成像,有望實現(xiàn)系統(tǒng)生物學領域的*夢想,”這項研究的*Hiroki Ueda說。
研究團隊正在進一步改進顯微成像方法,以便快速成像成年小鼠的整個機體甚至人類大腦。他們希望通過這一技術,深入理解自身免疫疾病和精神疾病的機制。
數(shù)十年前,科學家們就已經(jīng)學會了將一連串的DNA堿基轉變?yōu)榈鞍踪|氨基酸的基本遺傳密碼讀取細胞。但是十多年來,他們還在試圖破譯嵌入在生物體基因組中更為復雜的密碼:組蛋白密碼。組蛋白是指在染色體中DNA纏繞的一類特殊蛋白。采用化學方法以各種方式調整組蛋白就可以調節(jié)(上調或是下調)基因的活性。
Researchers in the study of this issue, the accidental discovery of CUBIC reagent amino alcohol can hemoglobin extracted from hemoglobin, thereby significantly improve the organism's transparency.
Using this method, they treated the mouse's brain, heart, lungs, kidneys, liver, and even the entire young and adult mice to obtain abnormally transparent mice. On the basis of this light-sheet fluorescence microscopy, a very sharp 3D image was obtained. To test the usefulness of this method, the researchers compared the pancreata in diabetic and non-diabetic mice and found a clear difference in their islets, the structure of the pancreas that produces insulin.
CUBIC requires reagents to fix the tissue so it can not be used in living organisms. However, CUBIC can help people gain insight into the 3D structures of organs and the expression of specific genes in different tissues, said first author Kazuki Tainaka. "Our approach results in almost whole-body, transparent young and adult mice, through which one can observe the cellular networks in the tissue, which is a fundamental challenge in the biological and medical fields."
CUBIC can be used for 3D pathology, anatomy and immunohistochemistry of whole organisms, for example, CUBIC can be used to observe the development of embryos at the cellular level or the development of cancer and autoimmune diseases. The disease process helps us to develop new therapeutic strategies, and whole-body imaging at the single-cell level is expected to bring about the ultimate dream in the field of system biology, "said Hiroki Ueda, a research leader.
The research team is further improving the microscopic imaging method to quickly image the entire body of adult mice and even the human brain. They hope that through this technology, they will have a deep understanding of the mechanisms of autoimmune diseases and mental illnesses.
Decades ago, scientists learned to read cells from the basic genetic code that transforms a series of DNA bases into protein amino acids. But for more than a decade, they are still trying to decipher the more complex passwords embedded in the genome of the organism: the histone code. Histone is a type of special protein that is entangled in the DNA of a chromosome. The chemical regulation of histones in a variety of ways can regulate (up-regulate or down-regulate) the activity of a gene.