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Project X (hrt)

Sorry people, I have to share this rather unique way to box out DHT, I stumbled across it when I was collecting some research, please follow along (my apologies for the technical crap explanation) I'll try to keep it in the ball park. Wink

The problem with DHT is when it enters into receptors it locks it up, and thereby making Aromatase an after thought, Aromatase is enzyme that converts free T to estrogen. (Aka boob growth), here I suggest a novel (well, at least for BN) called "Androgen Decoy's".


http://www.ncbi.nlm.nih.gov/core/lw/2.0/html/tileshop_pmc/tileshop_pmc_inline.html?title=Click%20on%20image%20to%20zoom&p=PMC3&id=3132148_nihms255516f1.jpg


[Image: attachment.php?aid=8137]
   

A transcriptional factor decoy strategy is the use of short double-stranded oligodeoxynucleotides containing a high-affinity binding site for specific transcription factors as a decoy DNA to be transfected into target cells [12–16]. Inside the cells, the decoy DNA competes with the endogenous high-affinity binding site of the target genes for binding to specific transcription factors, and consequently inhibits activated AR function [16]. Decoy DNA has potential for treatment of cardiovascular disease [12]. It also induces apoptosis in certain cell lines [13].

Androgen receptor decoy molecules block the growth of prostate cancer
http://www.pnas.org/content/104/4/1331.abstract


Androgen receptor: structure, role in prostate cancer and drug discovery
Androgens and androgen receptors (AR) play a pivotal role in expression of the male phenotype. Several diseases, such as androgen insensitivity syndrome (AIS) and prostate cancer, are associated with alterations in AR functions. Indeed, androgen blockade by drugs that prevent the production of androgens and/or block the action of the AR inhibits prostate cancer growth. However, resistance to these drugs often occurs after 2–3 years as the patients develop castration-resistant prostate cancer (CRPC). In CRPC, a functional AR remains a key regulator. Early studies focused on the functional domains of the AR and its crucial role in the pathology. The elucidation of the structures of the AR DNA binding domain (DBD) and ligand binding domain (LBD) provides a new framework for understanding the functions of this receptor and leads to the development of rational drug design for the treatment of prostate cancer. An overview of androgen receptor structure and activity, its actions in prostate cancer, and how structural information and high-throughput screening have been or can be used for drug discovery are provided herei
http://www.nature.com/aps/journal/vaop/n....html#fig1
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(02-10-2014, 03:48 AM)Lotus Wrote:  Sorry people, I have to share this rather unique way to box out DHT, I stumbled across it when I was collecting some research, please follow along (my apologies for the technical crap explanation) I'll try to keep it in the ball park. Wink

The problem with DHT is when it enters into receptors it locks it up, and thereby making Aromatase an after thought, Aromatase is enzyme that converts free T to estrogen. (Aka boob growth), here I suggest a novel (well, at least for BN) called "Androgen Decoy's".


http://www.ncbi.nlm.nih.gov/core/lw/2.0/html/tileshop_pmc/tileshop_pmc_inline.html?title=Click%20on%20image%20to%20zoom&p=PMC3&id=3132148_nihms255516f1.jpg


[Image: attachment.php?aid=8137]


A transcriptional factor decoy strategy is the use of short double-stranded oligodeoxynucleotides containing a high-affinity binding site for specific transcription factors as a decoy DNA to be transfected into target cells [12–16]. Inside the cells, the decoy DNA competes with the endogenous high-affinity binding site of the target genes for binding to specific transcription factors, and consequently inhibits activated AR function [16]. Decoy DNA has potential for treatment of cardiovascular disease [12]. It also induces apoptosis in certain cell lines [13].

Androgen receptor decoy molecules block the growth of prostate cancer
http://www.pnas.org/content/104/4/1331.abstract


Androgen receptor: structure, role in prostate cancer and drug discovery
Androgens and androgen receptors (AR) play a pivotal role in expression of the male phenotype. Several diseases, such as androgen insensitivity syndrome (AIS) and prostate cancer, are associated with alterations in AR functions. Indeed, androgen blockade by drugs that prevent the production of androgens and/or block the action of the AR inhibits prostate cancer growth. However, resistance to these drugs often occurs after 2–3 years as the patients develop castration-resistant prostate cancer (CRPC). In CRPC, a functional AR remains a key regulator. Early studies focused on the functional domains of the AR and its crucial role in the pathology. The elucidation of the structures of the AR DNA binding domain (DBD) and ligand binding domain (LBD) provides a new framework for understanding the functions of this receptor and leads to the development of rational drug design for the treatment of prostate cancer. An overview of androgen receptor structure and activity, its actions in prostate cancer, and how structural information and high-throughput screening have been or can be used for drug discovery are provided herei
http://www.nature.com/aps/journal/vaop/n....html#fig1

The mechanism of action of testosterone.
Testosterone enters the cell by passive diffusion and is converted to DHT and estradiol. Testosterone and DHT bind to the androgen receptor located in the cytoplasm attached to heat-shock proteins (not shown). Upon binding of testosterone and DHT to androgen receptor, heat-shock protein is released and the receptor dimerizes. Estradiol binds to the estrogen receptors ERα, ERβ

Androgen and AR action. Genome organization of the human androgen receptor gene and the functional domain structure of the androgen receptor protein. (A) Androgen and AR signaling in prostate cells. After testicular synthesis, testosterone is transported to target tissues such as the prostate and becomes converted to dihydrotestosterone (DHT) by 5-α-reductase. DHT binds to the ligand-binding pocket and promotes the dissociation of heat-shock proteins (HSPs) from the AR. The AR then translocates into the nucleus, dimerizes and binds to the androgen response element (ARE) in the promoter region of target genes such as prostate-specific antigen (PSA) and TMPRSS2. At the promoter, the AR is able to recruit members of the basal transcription machinery [such as TATA-box-binding protein (TBP) and transcription factor IIF (TFIIF)] in addition to other coregulators such as members of the p160 family of coactivators and cAMP-response element-binding protein (CREB)-binding protein (CBP). SHBG: serum sex hormone-binding globulin. (B) The androgen receptor gene has been mapped to the long arm of the X-chromosome (locus: Xq11-q12). It contains eight exons interrupted by introns of varying lengths (0.7–2.6 kb) and codes for a protein of 919 amino acids consisting of several functional domains (N-terminal domain (NTD), DNA binding domain (DBD) and ligand binding domain (LBD); amino acid residue numbers are indicated above the AR protein domain map). Exon 1 codes for the NTD, exons 2 and 3 encode the DBD, and exons 4 to 8 encode both the hinge and LBD.

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Comparison of crystal structures of human androgen receptor ligand-binding domain complexed with various agonists reveals molecular determinants responsible for binding affinity.

Abstract
Androgens exert their effects by binding to the highly specific androgen receptor (AR). In addition to natural potent androgens, AR binds a variety of synthetic agonist or antagonist molecules with different affinities. To identify molecular determinants responsible for this selectivity, we have determined the crystal structure of the human androgen receptor ligand-binding domain (hARLBD) in complex with two natural androgens, testosterone (Testo) and dihydrotestosterone (DHT), and with an androgenic steroid used in sport doping, tetrahydrogestrinone (THG), at 1.64, 1.90, and 1.75 A resolution, respectively. Comparison of these structures first highlights the flexibility of several residues buried in the ligand-binding pocket that can accommodate a variety of ligand structures. As expected, the ligand structure itself (dimension, presence, and position of unsaturated bonds that influence the geometry of the steroidal nucleus or the electronic properties of the neighboring atoms, etc.) determines the number of interactions it can make with the hARLBD. Indeed, THG--which possesses the highest affinity--establishes more van der Waals contacts with the receptor than the other steroids, whereas the geometry of the atoms forming electrostatic interactions at both extremities of the steroid nucleus seems mainly responsible for the higher affinity measured experimentally for DHT over Testo. Moreover, estimation of the ligand-receptor interaction energy through modeling confirms that even minor modifications in ligand structure have a great impact on the strength of these interactions. Our crystallographic data combined with those obtained by modeling will be helpful in the design of novel molecules with stronger affinity for the AR.

http://www.ncbi.nlm.nih.gov/pubmed/16641486?dopt=Abstract&holding=npg
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[Image: attachment.php?aid=8143]

The use of Prolactin towards DHT,
Prolactin augmentation of DHT effects is envisioned as resulting from interaction of prolactin with its receptor, which is due to the large size of prolactin molecules.

(18-08-2014, 09:28 PM)Lotus Wrote:  When testosterone enters the cell cytoplasm it is subsequently converted to the more "active" androgen, dihydrotestosterone, DHT, by reduction at the 5alpha position, this is normal. Dihydrotestosterone is then either bound to a cytoplasmic "receptor" protein Rc, or is further metabolized to either 5alpha-androstane-3alpha,17beta-diol or 5alpha-androstane-3beta,17beta-diol ,DIOL. The binding of DHT to its cytoplasmic receptor protein results in translocation of the steroid-receptor complex into the nucleus where presumably the complex dissociates and DHT exerts its androgenic effects.

The transport of DHT to the nucleus can also result from the conversion of testosterone to DHT by nuclear membrane-bound 5alpha-reductase. Prolactin augmentation of DHT effects is envisioned as resulting from interaction of prolactin with its receptor, which due to the large size of the prolactin molecule is probably located in or on the plasma membrane.

Large amounts of androgens look for a transporter so that it can bind to the androgen receptors, so it uses prolactin which has a high affinity to cytoplasmic receptor protein, allowing the androgens, testosterone, to be carried and allowing them to convert to dht, only problem is prolactin hormone or luteotropic hormone is synthesised and secreted by sex binding lactotrope cells in the adenohypophysis (anterior pituitary gland, And this gland now produces more prolactin to help deal with the large amount of testosterone circulating that hasn't bound to estrogen or androgen receptors.)

So more prolactin is produced to find a receptor, this excess prolactin triggers a process that fills the breast with milk via a process called lactogenesis, in men however it causes a distinct enlargment of the mammary gland and can even cause a man to lactate.

Prolactin influences upon androgen action in male accessory sex organs.
http://www.ncbi.nlm.nih.gov/pubmed/189591

Abstract
The hormones of the pituitary gland are capable of directly influencing the function of male accessory sex organs. Among these hormones, prolactin in particular has been observed to enhance consistently the effects of androgens in the prostate gland and/or the seminal vesicles of rats, mice, and guinea pigs as well as in the accessory sex organs of other species. Prolactin-mediated augmentation of testosterone's effects upon these tissues is related primarily to the growth-promoting influences of this steroid. However, under certain experimental conditions, the androgen-dependent production of secretions by these organs has also been enhanced by prolactin treatment. Studies in the mouse have indicated that prolactin primarily enhances the proliferative phase of androgen action in male accessory sex tissues. Testosterone stimulation of RNA synthesis was unaffected by simultaneous administration of prolactin. The mechanism by which prolactin causes enhanced androgen responses in the prostate gland and seminal vesicles is not well understood. It would appear, however, that prolactin neither stimulates increased accumulation of androgen into the accessory sex organs, nor does it enhance the conversion of testosterone to the more "active" androgen, dihydrotestosterone. The effects of prolactin on these tissues are, however, dependent upon the presence of dihydrotestosterone. Uncertain, at present, are the possible effects of prolactin on the binding or retention of androgens (dihydrotestosterone?) in the prostate gland or in the seminal vesicles. There is evidence that hypophysectomy reduces the nuclear binding of dihydrotestosterone in the cells of the prostate gland. Perhaps prolactin is a pituitary factor(s) which is important in regulating nuclear binding of dihydrotestosterone in male accessory sex organs. The direct influences of prolactin upon androgen action in the cells of the accessory sex organs may involve several sites of action (Figure 2). For example, it is currently understood that when testosterone enters the cell cytoplasm it is subsequently converted to the more "active" androgen, dihydrotestosterone (DHT), by reduction at the 5alpha position. Dihydrotestosterone is then either bound to a cytoplasmic "receptor" protein (Rc) or is further metabolized to either 5alpha-androstane-3alpha,17beta-diol or 5alpha-androstane-3beta,17beta-diol (DIOL). The binding of DHT to its cytoplasmic receptor protein results in translocation of the steroid-receptor complex into the nucleus where presumably the complex dissociates and DHT exerts its androgenic effects. The transport of DHT to the nucleus can also result from the conversion of testosterone to DHT by nuclear membrane-bound 5alpha-reductase. Prolactin augmentation of DHT effects is envisioned as resulting from interaction of prolactin with its receptor, which due to the large size of the prolactin molecule is probably located in or on the plasma membrane...


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I don't know who's these are? RolleyesTongue

Although I'm pretty sure that there DD's @ 11.5 inches.......



[Image: attachment.php?aid=8145]


Cool
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(03-10-2014, 06:52 AM)Lotus Wrote:  I don't know who's these are? RolleyesTongue

Although I'm pretty sure that there DD's @ 11.5 inches.......



[Image: attachment.php?aid=8145]


Cool

$&@) me.. Lol put those things away or share with your little friend on the other side of the world.. Wink

Reply

(03-10-2014, 06:55 AM)ELLACRAIG Wrote:  
(03-10-2014, 06:52 AM)Lotus Wrote:  I don't know who's these are? RolleyesTongue

Although I'm pretty sure that there DD's @ 11.5 inches.......



[Image: attachment.php?aid=8145]


Cool

$&@) me.. Lol put those things away or share with your little friend on the other side of the world.. Wink

Ha!, no guarantees with the delivery issues these days, their always losing stuff, heck, they could end up in a limbo, Sad
Reply

(03-10-2014, 07:13 AM)Lotus Wrote:  
(03-10-2014, 06:55 AM)ELLACRAIG Wrote:  
(03-10-2014, 06:52 AM)Lotus Wrote:  I don't know who's these are? RolleyesTongue

Although I'm pretty sure that there DD's @ 11.5 inches.......



[Image: attachment.php?aid=8145]


Cool

$&@) me.. Lol put those things away or share with your little friend on the other side of the world.. Wink

Ha!, if I sent them there'd be no guarantees with delivery issue were having these days, their always losing stuff too, heck the could end up in a perpetual loop, Sad

Not if i opted for insurance and signature required tracking.... just saying... Tongue
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Well hell, I'm Google to go then!Big Grin

Edit: what a dolt, I meant to say "good" Blush stupid auto correct!
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(03-10-2014, 06:52 AM)Lotus Wrote:  I don't know who's these are? RolleyesTongue

Although I'm pretty sure that there DD's @ 11.5 inches.......



[Image: attachment.php?aid=8145]


Cool

Fuffin heck !! Those nearly poked me eyes out !!
Lotus sprinkle some of that boobie magic on me :p
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Sexy Lotus, wow. :-O
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