Long time listener, first time caller (finally made a HN account).. Anyways, can someone please explain how positive/negative plays a factor here? Rh +/- is mentioned once in the article but not discussed as far as being a donor. I was always told O- is the universal red cell donor [1]. Can anyone help explain is this enzyme fixes the +/- component in addition to the ABO component? Thanks! [1] https://www.redcrossblo…
That's probably a separate and harder problem from this: The A and B antigens refer to the presence of carbohydrates extending from the cell membrane, whereas Rh factor + refers to the presence of a protein. Since there are different classes of bio-molecules, proteins may need different techniques to remove, alter, or cover them up. If we do find such techniques, they may have much broader applications in immunology.
Enzymes open new path to universal donor blood
11–20 of 34 posts
Re: Enzymes open new path to universal donor blood
#12Earlier quoted context omitted.
There are three components that can cause problems with transfusions: "A", "B" and "Rhesus". A person can have any combination of those three (8 combinations). The A/B/AB/O is basically having only A, only B, both, or neither. And the +/- is whether you have the "Rhesus" component. The basic rule is that you can't introduce new components to a person who doesn't have them in their system, and will be treated as forei…
I think O is recessive (if I remember from high school correctly). A is really AO (if we're being verbose). B is BO, AB is AB, O is OO. Each parent passes one of them on. So, a A dad and O mom would mix (being verbose again) AO and OO, and thus the child might be AO or OO, A or O. The + or - is for an independent "Rhesus" component, as you say. Not sure how this passes through the genes. This is all like high school…
Re: Enzymes open new path to universal donor blood
#13Earlier quoted context omitted.
There are three components that can cause problems with transfusions: "A", "B" and "Rhesus". A person can have any combination of those three (8 combinations). The A/B/AB/O is basically having only A, only B, both, or neither. And the +/- is whether you have the "Rhesus" component. The basic rule is that you can't introduce new components to a person who doesn't have them in their system, and will be treated as forei…
there is also the HH blood group that will react negatively to O type blood as well as A and B.
Since H is also a building-block needed for A and B to show up, it makes for fun medical-mystery plots, where a child's blood-type seems to be O and doesn't match their parents, but in reality they did get parental A/B/AB genes that just aren't able to express because each parent contributed a nonfunctional H-allele.
Re: Enzymes open new path to universal donor blood
#14Earlier quoted context omitted.
there is also the HH blood group that will react negatively to O type blood as well as A and B.
That naming is a little confusing, because if you say "blood group "A" or "B", that indicates the presence of A and B antigen structures, however "blood group H" means a lack of H. (Since almost everybody has H, it was discovered much later.) Since H is also a building-block needed for A and B to show up, it makes for fun medical-mystery plots, where a child's blood-type seems to be O and doesn't match their parents,…
Instead patients would have a "blood code" that indicates the tested presence or absence of phenotype cellular features, and any feature not listed would be considered "not yet known, do a test if it might be important."
For example, today's AB- would become +HAB-R for "has H,A,B lacks Rhesus factor." Similarly, O+ would become +HR-AB, and the super rare mutation we were just talking about would be either +R-HAB or -HABR.
Then when we eventually discover a yet-another factor X... Well, yes, your code wouldn't be constant throughout your life, because after an X-test it would gain either a +X or -X... However the upshot is that it eliminates weird implicit guessing games, and medical professionals will "know what they don't know".
Re: Enzymes open new path to universal donor blood
#15Earlier quoted context omitted.
There are three components that can cause problems with transfusions: "A", "B" and "Rhesus". A person can have any combination of those three (8 combinations). The A/B/AB/O is basically having only A, only B, both, or neither. And the +/- is whether you have the "Rhesus" component. The basic rule is that you can't introduce new components to a person who doesn't have them in their system, and will be treated as forei…
I think O is recessive (if I remember from high school correctly). A is really AO (if we're being verbose). B is BO, AB is AB, O is OO. Each parent passes one of them on. So, a A dad and O mom would mix (being verbose again) AO and OO, and thus the child might be AO or OO, A or O. The + or - is for an independent "Rhesus" component, as you say. Not sure how this passes through the genes. This is all like high school…
A can be either AA or AO and B can be either BB or BO.
AB is always AB like you said and O is always OO.
Re: Enzymes open new path to universal donor blood
#16Earlier quoted context omitted.
There are three components that can cause problems with transfusions: "A", "B" and "Rhesus". A person can have any combination of those three (8 combinations). The A/B/AB/O is basically having only A, only B, both, or neither. And the +/- is whether you have the "Rhesus" component. The basic rule is that you can't introduce new components to a person who doesn't have them in their system, and will be treated as forei…
I think O is recessive (if I remember from high school correctly). A is really AO (if we're being verbose). B is BO, AB is AB, O is OO. Each parent passes one of them on. So, a A dad and O mom would mix (being verbose again) AO and OO, and thus the child might be AO or OO, A or O. The + or - is for an independent "Rhesus" component, as you say. Not sure how this passes through the genes. This is all like high school…
Strangely, O is very common.
Re: Enzymes open new path to universal donor blood
#17Earlier quoted context omitted.
I think O is recessive (if I remember from high school correctly). A is really AO (if we're being verbose). B is BO, AB is AB, O is OO. Each parent passes one of them on. So, a A dad and O mom would mix (being verbose again) AO and OO, and thus the child might be AO or OO, A or O. The + or - is for an independent "Rhesus" component, as you say. Not sure how this passes through the genes. This is all like high school…
> I think O is recessive Strangely, O is very common.
Of course there's crackpot theories (aliens!) too.
Re: Enzymes open new path to universal donor blood
#18Earlier quoted context omitted.
there is also the HH blood group that will react negatively to O type blood as well as A and B.
That naming is a little confusing, because if you say "blood group "A" or "B", that indicates the presence of A and B antigen structures, however "blood group H" means a lack of H. (Since almost everybody has H, it was discovered much later.) Since H is also a building-block needed for A and B to show up, it makes for fun medical-mystery plots, where a child's blood-type seems to be O and doesn't match their parents,…
Thank you for the information as I always love learning more from the comments than the articles.
Re: Enzymes open new path to universal donor blood
#19Re: Enzymes open new path to universal donor blood
#20Earlier quoted context omitted.
I think O is recessive (if I remember from high school correctly). A is really AO (if we're being verbose). B is BO, AB is AB, O is OO. Each parent passes one of them on. So, a A dad and O mom would mix (being verbose again) AO and OO, and thus the child might be AO or OO, A or O. The + or - is for an independent "Rhesus" component, as you say. Not sure how this passes through the genes. This is all like high school…
> I think O is recessive Strangely, O is very common.
Having five fingers per hand is recessive too.