Blog Archive
- Apr 12 (12)
- Apr 13 (2)
- Apr 14 (7)
- Apr 15 (11)
- Apr 16 (5)
- Apr 17 (14)
- Apr 18 (16)
- Apr 19 (17)
- Apr 20 (28)
- Apr 21 (29)
- Apr 22 (15)
- Apr 23 (19)
- Apr 24 (8)
- Apr 25 (58)
- Apr 26 (44)
- Apr 28 (6)
- Apr 29 (6)
- Apr 30 (7)
- May 01 (8)
- May 02 (9)
- May 03 (4)
- May 04 (6)
- May 05 (14)
- May 06 (20)
- May 07 (11)
- May 08 (18)
- May 09 (6)
- May 10 (17)
- May 11 (8)
- May 12 (25)
- May 13 (8)
- May 14 (2)
- May 15 (2)
- May 17 (16)
- May 18 (1)
- May 19 (5)
- May 20 (22)
- May 21 (6)
- May 22 (3)
- May 23 (2)
- May 24 (7)
- May 25 (1)
- May 26 (6)
- May 27 (3)
- May 28 (3)
- May 29 (10)
- May 30 (8)
- May 31 (12)
- Jun 01 (1)
- Jun 02 (1)
- Jun 03 (9)
- Jun 04 (1)
- Jun 05 (2)
- Jun 07 (4)
- Jun 08 (8)
- Jun 09 (1)
- Jun 10 (1)
- Jun 19 (1)
- Jun 27 (1)
- Jun 29 (1)
- Jun 30 (7)
- Jul 01 (3)
- Jul 02 (1)
- Jul 03 (1)
- Jul 04 (2)
- Jul 05 (1)
- Jul 06 (3)
- Jul 08 (9)
- Jul 09 (1)
- Jul 10 (1)
- Jul 11 (2)
- Jul 12 (2)
- Jul 13 (4)
- Jul 14 (4)
- Jul 15 (2)
- Jul 17 (8)
- Jul 18 (17)
- Jul 19 (1)
- Jul 20 (8)
- Jul 21 (6)
- Jul 22 (12)
- Jul 23 (10)
- Jul 25 (6)
- Jul 26 (23)
- Jul 28 (50)
- Jul 30 (12)
- Jul 31 (5)
- Aug 01 (16)
- Aug 02 (5)
- Aug 03 (5)
- Aug 04 (11)
- Aug 05 (13)
- Aug 06 (7)
- Aug 07 (10)
- Aug 08 (2)
- Aug 09 (27)
- Aug 10 (15)
- Aug 11 (67)
- Aug 12 (44)
- Aug 13 (29)
- Aug 14 (120)
- Aug 15 (61)
- Aug 16 (36)
- Aug 17 (21)
- Aug 18 (5)
- Aug 21 (5)
- Aug 22 (54)
- Aug 23 (101)
- Aug 24 (100)
- Aug 25 (99)
- Aug 26 (100)
- Aug 27 (84)
- Aug 28 (73)
- Aug 29 (76)
- Aug 30 (67)
- Aug 31 (95)
- Sep 01 (126)
- Sep 02 (68)
- Sep 03 (11)
- Sep 04 (14)
- Sep 05 (47)
- Sep 06 (101)
- Sep 07 (61)
- Sep 08 (57)
- Sep 09 (46)
- Sep 10 (14)
- Sep 11 (93)
- Sep 12 (101)
- Sep 13 (101)
- Sep 14 (100)
- Sep 15 (77)
- Sep 16 (2)
- Sep 17 (101)
- Sep 18 (91)
- Sep 19 (102)
- Sep 20 (102)
- Sep 21 (94)
- Sep 22 (84)
- Sep 23 (110)
- Sep 24 (101)
- Sep 25 (76)
- Sep 26 (43)
- Sep 27 (87)
- Sep 28 (104)
- Sep 29 (92)
- Sep 30 (33)
- Oct 01 (58)
- Oct 02 (1)
- Oct 05 (8)
- Oct 06 (6)
- Oct 07 (4)
- Oct 08 (4)
- Oct 09 (1)
- Oct 10 (18)
- Oct 11 (8)
- Oct 12 (26)
- Oct 13 (6)
- Oct 14 (2)
- Oct 15 (4)
- Oct 16 (3)
- Oct 17 (4)
- Oct 18 (3)
- Oct 19 (11)
- Oct 20 (5)
- Oct 21 (7)
- Oct 22 (5)
- Oct 23 (8)
- Oct 24 (9)
- Oct 25 (14)
- Oct 26 (8)
- Oct 27 (13)
- Oct 28 (7)
- Oct 29 (7)
- Oct 30 (22)
- Oct 31 (13)
- Nov 01 (13)
- Nov 02 (6)
- Nov 03 (10)
- Nov 04 (17)
- Nov 05 (8)
- Nov 06 (9)
- Nov 07 (11)
- Nov 08 (3)
- Nov 09 (7)
- Nov 10 (5)
- Nov 11 (5)
- Nov 12 (5)
- Nov 13 (10)
- Nov 14 (7)
- Nov 15 (15)
- Nov 16 (8)
- Nov 17 (6)
- Nov 18 (5)
- Nov 19 (7)
- Nov 20 (8)
- Nov 21 (12)
- Nov 22 (5)
- Nov 23 (7)
- Nov 24 (7)
- Nov 25 (8)
- Nov 26 (2)
- Nov 27 (12)
- Nov 28 (2)
- Nov 29 (2)
- Dec 01 (1)
- Dec 02 (3)
- Dec 03 (2)
- Dec 04 (1)
- Dec 05 (9)
- Dec 06 (22)
- Dec 07 (2)
- Dec 08 (3)
- Dec 09 (1)
- Dec 13 (2)
- Dec 14 (12)
- Dec 15 (1)
- Dec 17 (1)
- Dec 23 (4)
- Dec 24 (2)
- Dec 25 (1)
- Dec 27 (2)
- Dec 28 (1)
- Dec 29 (6)
- Dec 30 (2)
- Dec 31 (6)
- Jan 03 (3)
- Jan 04 (12)
- Jan 05 (5)
- Jan 06 (7)
- Jan 07 (1)
- Jan 08 (3)
- Jan 09 (1)
- Jan 11 (1)
- Jan 12 (5)
- Jan 14 (1)
- Jan 16 (1)
- Jan 17 (1)
- Jan 18 (2)
- Jan 23 (1)
- Jan 26 (3)
- Jan 28 (2)
- Jan 29 (3)
- Jan 30 (1)
- Jan 31 (1)
- Feb 04 (2)
- Feb 05 (2)
- Feb 08 (2)
- Feb 09 (1)
- Feb 13 (3)
- Feb 15 (2)
- Feb 16 (1)
- Feb 17 (1)
- Feb 25 (2)
- Feb 28 (2)
- Mar 03 (1)
- Mar 08 (3)
- Mar 16 (2)
- Mar 17 (1)
- Mar 18 (11)
- Mar 20 (9)
- Mar 22 (1)
- Mar 23 (3)
- Mar 31 (1)
- Apr 01 (2)
- Apr 02 (1)
- Apr 03 (2)
- Apr 04 (1)
- Apr 05 (2)
- Apr 06 (6)
- Apr 07 (1)
- Apr 08 (7)
- Apr 09 (4)
- Apr 10 (7)
- Apr 19 (18)
- Apr 20 (12)
- Apr 21 (1)
- Apr 24 (2)
- May 11 (1)
- May 16 (4)
- May 20 (2)
- May 24 (2)
- May 27 (3)
- Jun 02 (2)
- Jun 06 (1)
- Jun 07 (9)
- Jun 10 (1)
- Jun 11 (2)
- Jun 12 (3)
- Jun 15 (1)
- Jun 17 (1)
- Jun 20 (5)
- Jun 21 (12)
- Jun 22 (21)
- Jun 23 (10)
- Jun 24 (4)
- Jun 25 (10)
- Jun 26 (5)
- Jun 28 (4)
- Jun 29 (2)
- Jun 30 (2)
- Jul 01 (1)
- Jul 04 (1)
- Jul 05 (2)
- Jul 06 (1)
- Jul 07 (2)
- Jul 08 (1)
- Jul 09 (3)
- Jul 10 (6)
- Jul 11 (7)
- Jul 12 (2)
- Jul 13 (3)
- Jul 14 (7)
- Jul 15 (4)
- Jul 16 (9)
- Jul 17 (2)
- Jul 18 (6)
- Jul 19 (6)
- Jul 20 (14)
- Jul 21 (2)
- Jul 22 (6)
- Jul 23 (14)
- Jul 24 (6)
- Jul 25 (5)
- Jul 26 (5)
- Jul 27 (2)
- Jul 28 (6)
- Jul 29 (1)
- Jul 30 (3)
- Jul 31 (1)
- Aug 01 (6)
- Aug 03 (6)
- Aug 04 (4)
- Aug 05 (2)
- Aug 06 (2)
- Aug 07 (1)
- Aug 08 (1)
- Aug 09 (1)
- Aug 10 (1)
- Aug 11 (3)
- Aug 12 (1)
- Aug 13 (1)
- Aug 14 (1)
- Aug 15 (1)
- Aug 17 (9)
- Aug 19 (1)
- Aug 24 (1)
- Aug 28 (1)
- Oct 14 (1)
- Oct 22 (1)
- Nov 13 (10)
- Nov 14 (1)
- Nov 15 (3)
- Nov 23 (2)
- Nov 24 (1)
- Nov 25 (1)
- Nov 26 (1)
- Dec 01 (3)
- Dec 07 (3)
- Dec 08 (1)
- Dec 10 (2)
- Dec 12 (22)
- Dec 13 (30)
- Dec 15 (7)
- Dec 20 (5)
- Dec 28 (1)
- Dec 29 (3)
- Dec 31 (1)
- Jan 02 (2)
- Jan 10 (1)
- Jan 14 (1)
- Jan 17 (4)
- Jan 29 (2)
- Feb 03 (1)
- Feb 04 (6)
- Feb 05 (5)
- Feb 06 (10)
- Feb 08 (16)
- Feb 10 (63)
- Feb 11 (39)
- Feb 12 (33)
- Feb 13 (27)
- Feb 14 (4)
- Feb 15 (66)
- Feb 16 (7)
- Feb 17 (22)
- Feb 18 (14)
- Feb 19 (44)
- Feb 20 (3)
- Feb 21 (12)
- Feb 22 (68)
- Feb 23 (78)
- Feb 25 (3)
- Feb 26 (10)
- Feb 27 (28)
- Feb 28 (26)
- Mar 01 (17)
- Mar 02 (7)
- Mar 03 (6)
- Mar 04 (3)
- Mar 05 (7)
- Mar 06 (8)
- Mar 07 (13)
- Mar 08 (6)
- Mar 09 (3)
- Mar 10 (2)
- Mar 11 (15)
- Mar 12 (6)
- Mar 13 (2)
- Mar 14 (15)
- Mar 15 (10)
- Mar 16 (6)
- Mar 17 (5)
- Mar 18 (3)
- Mar 19 (3)
- Mar 20 (9)
- Mar 21 (2)
- Mar 22 (1)
- Mar 23 (15)
- Mar 24 (1)
- Mar 25 (1)
- Mar 26 (7)
- Mar 27 (5)
- Mar 28 (2)
- Mar 29 (8)
- Mar 30 (21)
- Mar 31 (10)
- Apr 01 (3)
- Apr 02 (3)
- Apr 03 (9)
- Apr 04 (1)
- Apr 05 (4)
- Apr 06 (4)
- Apr 07 (4)
- Apr 08 (4)
- Apr 09 (1)
- Apr 10 (1)
- Apr 11 (6)
- Apr 12 (7)
- Apr 13 (3)
- Apr 14 (2)
- Apr 15 (11)
- Apr 16 (16)
- Apr 17 (12)
- Apr 18 (29)
- Apr 19 (21)
- Apr 20 (3)
- Apr 21 (8)
- Apr 22 (3)
- Apr 23 (5)
- Apr 24 (1)
- Apr 25 (4)
- Apr 26 (6)
- Apr 27 (8)
- Apr 28 (10)
- Apr 30 (2)
- May 01 (7)
- May 02 (3)
- May 03 (16)
- May 04 (3)
- May 05 (11)
- May 06 (41)
- May 07 (2)
- May 08 (18)
- May 09 (117)
- May 10 (15)
- May 11 (85)
- May 12 (12)
- May 13 (54)
- May 14 (73)
- May 15 (85)
- May 16 (148)
- May 17 (101)
- May 18 (100)
- May 19 (99)
- May 20 (101)
- May 21 (101)
- May 22 (101)
- May 23 (101)
- May 24 (101)
- May 25 (7)
- May 27 (1)
- May 28 (1)
- May 29 (29)
- Jun 02 (1)
- Jun 03 (21)
- Jun 04 (7)
- Jun 05 (8)
- Jun 06 (1)
- Jun 22 (5)
- Jun 23 (10)
- Jun 24 (10)
- Jun 25 (4)
- Jun 26 (7)
- Jun 27 (22)
- Jun 28 (12)
- Jun 29 (11)
- Jun 30 (23)
- Jul 01 (10)
- Jul 02 (13)
- Jul 03 (17)
- Jul 04 (41)
- Jul 05 (17)
- Jul 06 (8)
- Jul 07 (10)
- Jul 08 (6)
- Jul 09 (3)
- Jul 10 (2)
- Jul 11 (2)
- Jul 12 (12)
- Jul 13 (6)
- Jul 14 (14)
- Jul 15 (5)
- Jul 17 (1)
- Jul 18 (1)
- Jul 19 (1)
- Jul 20 (1)
- Jul 22 (2)
- Jul 23 (30)
- Jul 24 (5)
- Jul 25 (55)
- Jul 27 (8)
- Jul 28 (26)
- Jul 29 (15)
- Jul 30 (35)
- Jul 31 (5)
- Aug 01 (13)
- Aug 02 (3)
- Aug 04 (1)
- Aug 05 (2)
- Aug 11 (11)
- Aug 13 (3)
- Aug 14 (7)
- Aug 15 (3)
- Aug 16 (5)
- Aug 17 (4)
- Aug 18 (4)
- Aug 19 (2)
- Aug 20 (19)
- Aug 21 (38)
- Aug 23 (14)
- Aug 24 (6)
- Aug 25 (30)
- Aug 26 (57)
- Aug 27 (19)
- Aug 28 (25)
- Aug 29 (120)
- Aug 30 (82)
- Aug 31 (46)
- Sep 01 (96)
- Sep 02 (101)
- Sep 03 (62)
- Sep 04 (32)
- Sep 05 (44)
- Sep 06 (91)
- Sep 07 (22)
- Sep 08 (100)
- Sep 09 (71)
- Sep 10 (15)
- Sep 11 (90)
- Sep 13 (2)
Thursday, September 30, 2021
09-30-2021-1613 - drafting covid decrans
COVID 19 Decrease new infection
recos
infected
vaccinated infected
vaccinated recovered
Immune by single gene set, gene presence, marker presence, extrachromosomal DNA (infusions/transfusions), or DNA complexing, supramolecular and condensed, etc..
Matricing error induction cascade autoregenerative autoimmune degeneration ste
Non-Self BTR, Organ Trans, Shell Swap, stolen childs, etc.. nonh
Immune system dysfunction, Allergy, Inflammation, HIV (viral integration transform), endogenous virus genome encoded, viral acquisition compounding, fibrotics/dystrophy/lipodys, etc.. oppinf.
Autoimmune disease resp to hyperactivation.
Endogenous virus genome encoded, activans, mil-bil, regressions. deterior.
Cancer, ossificans, dysplasia, deformans, etc.. defos.
09-30-2021-1546 - US-Canada & Afghanistan & War
Afghan War: Do Americans support Biden pulling out?
Published21 April
https://www.bbc.com/news/world-us-canada-56823213
09-30-2021-0339 - Myanmar shadow government calls for uprising against military
Myanmar shadow government calls for uprising against military
National Unity Government calls on all citizens to ‘revolt against the rule of the military terrorists’ in every corner of the country.
https://www.aljazeera.com/news/2021/9/7/myanmar-shadow-government-launches-peoples-defensive-war
09-30-2021-0333 - News
Families demand change after dozens died in veterans’ home COVID-19 outbreak
Sep 29, 05:55 PM
https://www.armytimes.com/news/2021/09/29/families-demand-change-after-dozens-died-in-veterans-home-covid-19-outbreak/
https://thefallen.militarytimes.com/?source=arm-nav
https://www.tmj4.com/news/local-news/remains-of-wisconsin-world-war-ii-veteran-identified-to-be-buried-in-november
We are not at war with Wikipedia or Wikileaks.
https://news.yahoo.com/kidnapping-assassination-and-a-london-shoot-out-inside-the-ci-as-secret-war-plans-against-wiki-leaks-090057786.html
"It's a war": California turns to new, high-tech helicopters to battle wildfires
Bill Whitaker reports on the largest helicopter to ever fight fires at night, now being used in California as the state faces one of its most intense fire years ever.
https://www.cbsnews.com/news/california-wildfires-helicopters-60-minutes-2021-09-26/
Ecuador riot: Anxious families await news after fighting kills 116 inmates
Published1 hour ago
https://www.bbc.com/news/world-latin-america-58733202
‘Overdue’: Biden sets Aug. 31 for US exit from Afghanistan
By ZEKE MILLER and AAMER MADHANI
July 8, 2021
09-30-2021-0313 - US 'lost' the 20-year war in Afghanistan: top US general
US 'lost' the 20-year war in Afghanistan: top US general
Issued on: 29/09/2021 - 22:40
Modified: 29/09/2021 - 22:38
https://www.france24.com/en/live-news/20210929-us-lost-the-20-year-war-in-afghanistan-top-us-general
09-30-2021-0209 - Climate change: Arctic warming linked to colder winters
Climate change: Arctic warming linked to colder winters
By Matt McGrath
Environment correspondent
https://www.bbc.com/news/science-environment-58425526
09-9-30-2021-0041 - USDA, AVMA, FDA ; CDC, WHO, ADA
https://www.usda.gov
https://www.avma.org/
https://www.fda.gov/
---
https://www.cdc.gov
https://www.who.int
https://www.ada.org/
---
https://www.dea.gov
09-30-2021-0018 - USA/NAC/DOM Amcans & etc. 2021
https://en.wikipedia.org/wiki/Bruce_L._Gewertz
https://www.andrewssportsmedicine.com/about/patient-stories/paul-krieger
https://www.amenclinics.com/team/jared-mendelsohn-md/
https://www.usnews.com/info/blogs/press-room/articles/2021-09-14/us-news-unveils-new-medical-review-board
https://www.fmcsa.dot.gov/mrb
https://www.health.mil/Military-Health-Topics/Conditions-and-Treatments/Physical-Disability/Disability-Evaluation/Medical-Evaluation
https://journalofethics.ama-assn.org/article/role-state-medical-boards/2005-04
oei/reports/oei-01-93-00020.pdf
https://oig.hhs.gov
https://en.wikipedia.org/wiki/Surgeon_General_of_the_United_States
https://en.wikipedia.org/wiki/United_States_Public_Health_Service_Commissioned_Corps
https://en.wikipedia.org/wiki/United_States_Department_of_Health_and_Human_Services
https://en.wikipedia.org/wiki/National_Board_of_Medical_Examiners
https://en.wikipedia.org/wiki/Category:Healthcare_accreditation_organizations_in_the_United_States
https://www.ama-assn.org
https://en.wikipedia.org/wiki/federal_medical_board_united_states_of_america
https://www.ice.gov/coronavirus
https://www.justice.gov
https://www.federalregister.gov/agencies/health-and-human-services-department
https://www.epa.gov/rcra/medical-waste
https://www.who.int/health-laws/countries/usa-en.pdf?ua=1
https://www.bop.gov
https://www.loc.gov/rr/news/fedgov.html
https://www.dol.gov/agencies/whd
https://www.gao.gov
https://www.ahrq.gov
https://en.wikipedia.org/wiki/United_States_Congress
https://en.wikipedia.org/wiki/United_States_House_of_Representatives
https://en.wikipedia.org/wiki/United_States_Senate
https://en.wikipedia.org/wiki/List_of_members_of_the_United_States_Congress_by_longevity_of_service
https://www.eia.gov
https://www.nsa.gov
https://www.blm.gov
https://www.youtube.com/watch?v=q0_g6LOa_gg
https://www.cfr.org/
https://www.nrc.no/usa
https://www.rescue.org
Republicans are the clowns in the debt ceiling circus: The act isn’t funny anymore
The GOP’s united front on the debt ceiling is the most transparent kind of political cynicism
https://wisconsinexaminer.com/2021/09/29/republicans-are-the-clowns-in-the-debt-ceiling-circus-the-act-isnt-funny-anymore/
https://sanatatea-inimii-b.com/?_=%2Fwiki%2FCategory%3AWikiProject_U.S._Congress_events%23%2BkeeBa0NTfAft3ddyzhRYgaccLICct8%3D
Revealed: LAPD officers told to collect social media data on every civilian they stop
https://www.theguardian.com/us-news/2021/sep/08/revealed-los-angeles-police-officers-gathering-social-media
Child Bride is not Human Trafficking; Human Trafficking is theft/etc. of biological/etc. code/sequence/gene/intellectual property/component/color/structure/function/feature/particle/oscillation frequency/component/whole/part/child/embryo/infant/fetus/leg/arm/limb/organ/thymus/brain/matrix/etc..
https://apnews.com/article/middle-east-child-trafficking-27d93a340c4834d497eb36e22bb72f42
Families demand change after dozens died in veterans’ home COVID-19 outbreak
Sep 29, 05:55 PM
https://www.armytimes.com/news/2021/09/29/families-demand-change-after-dozens-died-in-veterans-home-covid-19-outbreak/
09-29-2021-2243 - 4397/8-9,4400
09-29-2021-2243 - 4397/8-9,4400
https://habr.com/ru/company/golovanov_net/blog/430016/
09-29-2021-2240 - random hexamer
A random hexamer or random hexonucleotides are for various PCR applications such as rolling circle amplification to prime the DNA.
They are oligonucleotide sequences of 6 bases which are synthesised entirely randomly to give a numerous range of sequences that have the potential to anneal at many random points on a DNA sequence and act as a primer to commence first strand cDNA synthesis. [1][2][3]
References[edit]
- ^ http://www.invitrogen.com/site/us/en/home/References/protocols/nucleic-acid-amplification-and-expression-profiling/pcr-protocol/pcr-and-rt-pcr.html
- ^ https://www.thermoscientificbio.com/general-reagents-and-accessories/primers-for-cdna-synthesis
- ^ Hansen, KD; Brenner, SE; Dudoit, S (2010). "Biases in Illumina transcriptome sequencing caused by random hexamer priming". Nucleic Acids Res. 38: e131. doi:10.1093/nar/gkq224. PMC 2896536. PMID 20395217.
Sunday, September 12, 2021
09-11-2021-2203 - Rhodocene bis(cyclopentadienyl)rhodium(II) dicyclopentadienylrhodium rhodium dilio dilitho lithium 45 1803
Monday, September 6, 2021
09-06-2021-0134 - Pyrazole
Saturday, September 18, 2021
09-18-2021-0759 - Cyaphide SiR3-functionalised phosphaalkynes cyaphide complex Organometallic complexes of cyaphide were first reported in 1992 From 2-phosphaethynolate anion (−OC≡P) RuH(dppe) 2(CP) phosphaalkyne (P≡CH) Methylidynephosphane Phosphorus
09-07-2021-1403 - Pseudohalogens analoge analogue psuedo
Tuesday, September 7, 2021
09-07-2021-1358 - Cyaphide
phosphorous/phosphorus, iodine, arsenic, acid
sulfur, silver, aluminum, lead
(mercury, argon)
boron, fluorine, beryllium
cesium, strontium
cobalt, uranium, graphite
cyanogen, cyanide
radon, og
antimony,
rhodium, ruthenium, lanathides, etc..
prussian blue Iron(II,III) hexacyanoferrate(II,III)
zero dipole, preon, neutronium, graviton, gauge, boson, baryon matter, pressuron, quantum interface, plasma, chain, cascade, zero state, residue, oscillation, vibration, glycerol, propylene glycol, cellulose, etc.. pressure, measure, ion, nuclear fusion, exotic, magnet, etc..
https://en.wikipedia.org/wiki/Periodic_table
https://en.wikipedia.org/wiki/Lanthanide_contraction
https://en.wikipedia.org/wiki/Allotropes_of_phosphorus#White_phosphorus
https://en.wikipedia.org/wiki/Potash
https://en.wikipedia.org/wiki/Phosphorus
https://en.wikipedia.org/wiki/Phosphorous
https://en.wikipedia.org/wiki/Phosphonium
https://en.wikipedia.org/wiki/Phosphine
https://en.wikipedia.org/wiki/Tetrakis(hydroxymethyl)phosphonium_chloride
https://en.wikipedia.org/wiki/Onium_ion
https://en.wikipedia.org/wiki/Zwitterion
https://en.wikipedia.org/wiki/Pnictogen
https://en.wikipedia.org/wiki/Ferrocyanide
https://en.wikipedia.org/wiki/Ylide
https://en.wikipedia.org/wiki/Magnetic_dipole
https://en.wikipedia.org/wiki/Magnetic_dipole–dipole_interaction
https://en.wikipedia.org/wiki/Zero-point_energy
https://en.wikipedia.org/wiki/Quadrupole
https://en.wikipedia.org/wiki/Overtone_band
https://en.wikipedia.org/wiki/water
https://en.wikipedia.org/wiki/Amphoterism
https://en.wikipedia.org/wiki/chalcogen
https://en.wikipedia.org/wiki/Allotropes_of_oxygen
https://en.wikipedia.org/wiki/Ozone
https://en.wikipedia.org/wiki/Cyclic_ozone
https://en.wikipedia.org/wiki/Epoxide
https://en.wikipedia.org/wiki/Carbon_tetraiodide
https://en.wikipedia.org/wiki/Triphenylphosphine
https://en.wikipedia.org/wiki/Desiccant
https://en.wikipedia.org/wiki/Hygroscopy
https://en.wikipedia.org/wiki/Dehydrogenation
https://en.wikipedia.org/wiki/hydrogenation
https://en.wikipedia.org/wiki/Protonation
https://en.wikipedia.org/wiki/Proton–proton_chain
https://en.wikipedia.org/wiki/L-shell
https://en.wikipedia.org/wiki/Hyperfine_structure
https://en.wikipedia.org/wiki/Dipole_repeller
https://en.wikipedia.org/wiki/Anomalous_magnetic_dipole_moment
https://en.wikipedia.org/wiki/Baryon_asymmetry
https://en.wikipedia.org/wiki/Missing_baryon_problem
https://en.wikipedia.org/wiki/Sterile_neutrino
https://en.wikipedia.org/wiki/Zero_field_splitting
https://en.wikipedia.org/wiki/Permeability_(electromagnetism)
https://en.wikipedia.org/wiki/Earth%27s_magnetic_field
https://en.wikipedia.org/wiki/Multipole_radiation
https://en.wikipedia.org/wiki/Hydrogen_line
https://en.wikipedia.org/wiki/Polarization_density
https://en.wikipedia.org/wiki/Chemical_bond
https://en.wikipedia.org/wiki/Cosmic_microwave_background
https://en.wikipedia.org/wiki/Muon#Anomalous_magnetic_dipole_moment
https://en.wikipedia.org/wiki/Nuclear_magnetic_resonance#Zero_field_NMR
https://en.wikipedia.org/wiki/Ferromagnetism
https://en.wikipedia.org/wiki/L-shell#Charged_particle_motions_in_a_dipole_field
https://en.wikipedia.org/wiki/Distributive_lattice
https://en.wikipedia.org/wiki/Ionization
https://en.wikipedia.org/wiki/Ionization#Quasi-static_tunnel_ionization
https://en.wikipedia.org/wiki/Above-threshold_ionization
https://en.wikipedia.org/wiki/Degree_of_ionization
https://en.wikipedia.org/wiki/Vacuum
https://en.wikipedia.org/wiki/pressure
https://en.wikipedia.org/wiki/temperature
https://en.wikipedia.org/wiki/volume
https://en.wikipedia.org/wiki/path
https://en.wikipedia.org/wiki/Radiation#Ionizing_radiation
https://en.wikipedia.org/wiki/Thermal_ionization
https://en.wikipedia.org/wiki/Resonance_ionization
https://en.wikipedia.org/wiki/Fast_atom_bombardment
https://en.wikipedia.org/wiki/Penning_ionization
https://en.wikipedia.org/wiki/Photoionization
https://en.wikipedia.org/wiki/Atmospheric-pressure_laser_ionization
https://en.wikipedia.org/wiki/Rydberg_atom
https://en.wikipedia.org/wiki/Atomic_radius
https://en.wikipedia.org/wiki/Exotic_atom
https://en.wikipedia.org/wiki/Grand_canonical_ensemble
https://en.wikipedia.org/wiki/Sample_preparation_in_mass_spectrometry#Matrix-assisted_laser_desorption%2Fionization
https://en.wikipedia.org/wiki/Electron
https://en.wikipedia.org/wiki/proton
https://en.wikipedia.org/wiki/neutron
https://en.wikipedia.org/wiki/Atom
High Energy Particle Physics,
https://en.wikipedia.org/wiki/Hypernucleus
https://en.wikipedia.org/wiki/Exciton
https://en.wikipedia.org/wiki/Electron_hole
https://en.wikipedia.org/wiki/Di-positronium
https://en.wikipedia.org/wiki/High_Energy_and_Particle_Physics_Prize
https://en.wikipedia.org/wiki/Positronium_hydride
https://en.wikipedia.org/wiki/Muonium_chloride
https://en.wikipedia.org/wiki/Quantum_chromodynamics
https://en.wikipedia.org/wiki/Electroweak_interaction
https://en.wikipedia.org/wiki/Asymptotic_freedom
https://en.wikipedia.org/wiki/Gauge_theory
https://en.wikipedia.org/wiki/Deep_inelastic_scattering
https://en.wikipedia.org/wiki/Rutherford_scattering
09-29-2021-2238 - Extrachromosomal DNA & Chemical Synthesis
Extrachromosomal DNA (abbreviated ecDNA) is any DNA that is found off the chromosomes, either inside or outside the nucleus of a cell. Most DNA in an individual genome is found in chromosomes contained in the nucleus. Multiple forms of extrachromosomal DNA exist and serve important biological functions,[1] e.g. they can play a role in disease, such as ecDNA in cancer.[2]
https://en.wikipedia.org/wiki/Extrachromosomal_DNA
Monday, September 6, 2021
---------------------------------------------------------------------------------------------------------
In chemistry, chemical synthesis (or combination) is the artificial execution of useful chemical reactions to obtain one or several products.[1]This occurs by physical and chemical manipulations usually involving one or more reactions. In modern laboratory uses, the process is reproducible and reliable.
A chemical synthesis involves one or more compounds (known as reagents or reactants) that will undergo a transformation when subjected to certain conditions. Various reaction types can be applied to formulate a desired product. This requires mixing the compounds in a reaction vessel, such as a chemical reactor or a simple round-bottom flask. Many reactions require some form of work-up or purification procedure to isolate the final product.[1]
The amount produced in chemical synthesis is known as the reaction yield. Typically, yields are expressed as a mass in grams (in a laboratory setting) or as a percentage of the total theoretical quantity that could be produced based on the limiting reagent. A side reaction is an unwanted chemical reaction taking place which reduces the desired yield. The word synthesis was first used by the chemist Hermann Kolbe.[2]
Strategies[edit]
Many strategies exist in chemical synthesis that go beyond converting reactant A to reaction product B in a single step. In multistep synthesis, a chemical compound is synthesized through a series of individual chemical reactions, each with its own work-up.[3] For example, a laboratory synthesis of paracetamol can consist of three individual synthetic steps. In cascade reactions multiple chemical transformations take place within a single reactant, in multi-component reactions up to 11 different reactants form a single reaction product and in a telescopic synthesis one reactant goes through multiple transformations without isolation of intermediates.
Organic synthesis[edit]
Organic synthesis is a special branch of chemical synthesis dealing with the synthesis of organic compounds. In the total synthesis of a complex product it may take multiple steps to synthesize the product of interest and an inordinate amount of time. Skill in organic synthesis is prized among chemists and the synthesis of exceptionally valuable or difficult compounds has won chemists such as Robert Burns Woodwardthe Nobel Prize for Chemistry. If a chemical synthesis starts from basic laboratory compounds, it is considered a purely synthetic process. If it starts from a product isolated from plants or animals and then proceeds to new compounds, the synthesis is described as a semisyntheticprocess.
Inorganic synthesis[edit]
Inorganic synthesis and organometallic synthesis are applied to the preparation of compounds with significant non-organic content. An illustrative example is the preparation of the anti-cancer drug cisplatin from potassium tetrachloroplatinate.[4]
See also[edit]
Chemical synthesis
Branches of chemistry
https://en.wikipedia.org/wiki/Chemical_synthesis
09-29-2021-2234 - expanded genetic code & Artificial gene synthesis
An expanded genetic code is an artificially modified genetic code in which one or more specific codons have been re-allocated to encode an amino acid that is not among the 22 common naturally-encoded proteinogenic amino acids.[1]
The key prerequisites to expand the genetic code are:
- the non-standard amino acid to encode,
- an unused codon to adopt,
- a tRNA that recognises this codon, and
- a tRNA synthetase that recognises only that tRNA and only the non-standard amino acid.
Expanding the genetic code is an area of research of synthetic biology, an applied biological discipline whose goal is to engineer living systems for useful purposes. The genetic code expansion enriches the repertoire of useful tools available to science.
In May 2019, researchers, in a milestone effort, reported the creation of a new synthetic (possibly artificial) form of viable life, a variant of the bacteria Escherichia coli, by reducing the natural number of 64 codons in the bacterial genome to 61 codons (eliminating two out of the six codons coding for serine and one out of three stop codons) - of which 59 used to encode 20 amino acids.[2][3]
https://en.wikipedia.org/wiki/Expanded_genetic_code
Artificial gene synthesis, or gene synthesis, refers to a group of methods that are used in synthetic biology to construct and assemble genes from nucleotides de novo. Unlike DNA synthesis in living cells, artificial gene synthesis does not require template DNA, allowing virtually any DNA sequence to be synthesized in the laboratory. It comprises two main steps, the first of which is solid-phase DNA synthesis, sometimes known as DNA printing.[1] This produces oligonucleotide fragments that are generally under 200 base pairs. The second step then involves connecting these oligonucleotide fragments using various DNA assembly methods. Because artificial gene synthesis does not require template DNA, it is theoretically possible to make a completely synthetic DNA molecule with no limits on the nucleotide sequence or size.
Synthesis of the first complete gene, a yeast tRNA, was demonstrated by Har Gobind Khorana and coworkers in 1972.[2] Synthesis of the first peptide- and protein-coding genes was performed in the laboratories of Herbert Boyer and Alexander Markham, respectively.[3][4] More recently, artificial gene synthesis methods have been developed that will allow the assembly of entire chromosomes and genomes. The first synthetic yeast chromosome was synthesised in 2014, and entire functional bacterialchromosomes have also been synthesised.[5] In addition, artificial gene synthesis could in the future make use of novel nucleobase pairs (unnatural base pairs).[6][7][8]
https://en.wikipedia.org/wiki/Artificial_gene_synthesis
09-29-2021-2234 - synonymous substitution
A synonymous substitution (often called a silent substitution though they are not always silent) is the evolutionary substitution of one basefor another in an exon of a gene coding for a protein, such that the produced amino acid sequence is not modified. This is possible because the genetic code is "degenerate", meaning that some amino acids are coded for by more than one three-base-pair codon; since some of the codons for a given amino acid differ by just one base pair from others coding for the same amino acid, a mutation that replaces the "normal" base by one of the alternatives will result in incorporation of the same amino acid into the growing polypeptide chain when the gene is translated. Synonymous substitutions and mutations affecting noncoding DNA are often considered silent mutations; however, it is not always the case that the mutation is silent.[1][2][3][4][5]
A synonymous mutation can affect transcription, splicing, mRNA transport, and translation, any of which could alter the resulting phenotype, rendering the synonymous mutation non-silent.[3] The substrate specificity of the tRNA to the rare codon can affect the timing of translation, and in turn the co-translational folding of the protein.[1] This is reflected in the codon usage bias that is observed in many species. A nonsynonymous substitution results in a change in amino acid that may be arbitrarily further classified as conservative (a change to an amino acid with similar physiochemical properties), semi-conservative (e.g. negatively to positively charged amino acid), or radical (vastly different amino acid).
Degeneracy of the genetic code[edit]
Protein translation involves a set of twenty amino acids. Each of these amino acids is coded for by a sequence of three DNA base pairs called a codon. Because there are 64 possible codons, but only 20-22 encoded amino acids (in nature) and a stop signal (i.e. up to three codons that do not code for any amino acid and are known as stop codons, indicating that translation should stop), some amino acids are coded for by 2, 3, 4, or 6 different codons. For example, the codons TTT and TTC both code for the amino acid phenylalanine. This is often referred to as redundancy of the genetic code. There are two mechanisms for redundancy: several different transfer RNAs can deliver the same amino acid, or one tRNA can have a non-standard wobble base in position three of the anti-codon, which recognises more than one base in the codon.
In the above phenylalanine example, suppose that the base in position 3 of a TTT codon got substituted to a C, leaving the codon TTC. The amino acid at that position in the protein will remain a phenylalanine. Hence, the substitution is a synonymous one.
Evolution[edit]
When a synonymous or silent mutation occurs, the change is often assumed to be neutral, meaning that it does not affect the fitness of the individual carrying the new gene to survive and reproduce.
Synonymous changes may not be neutral because certain codons are translated more efficiently (faster and/or more accurately) than others. For example, when a handful of synonymous changes in the fruit fly alcohol dehydrogenase gene were introduced, changing several codons to sub-optimal synonyms, production of the encoded enzyme was reduced[6] and the adult flies showed lower ethanol tolerance.[7] Many organisms, from bacteria through animals, display biased use of certain synonymous codons. Such codon usage bias may arise for different reasons, some selective, and some neutral. In Saccharomyces cerevisiae synonymous codon usage has been shown to influence mRNAfolding stability, with mRNA encoding different protein secondary structure preferring different codons.[8]
Another reason why synonymous changes are not always neutral is the fact that exon sequences close to exon-intron borders function as RNA splicing signals. When the splicing signal is destroyed by a synonymous mutation, the exon does not appear in the final protein. This results in a truncated protein. One study found that about a quarter of synonymous variations affecting exon 12 of the cystic fibrosis transmembrane conductance regulator gene result in that exon being skipped.[9]
See also[edit]
- Ka/Ks ratio
- Missense mutation
- Nonsynonymous substitution
- Point mutation
- Expanded genetic code, where more than 20-22 natural encoded amino acids are used
https://en.wikipedia.org/wiki/Synonymous_substitution