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@Kushizlez
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Day 54-64 (June 14th-24th) (Day 55) I got a good look at all of the plants in the dark and all of them are quite faded out except for black garlic and the blueberries. Running multiple different strains that all feed differently would be a nightmare on a larger scale! (Day 56) Everything is looking on point and happy. Plants are drinking about a liter of water every 36 hours. (Day 59) Jack Herer #1 has some of the most wild looking foxtails I’ve ever seen. Not a very desirable trait but it’s cool to grow. It’s smell is pure bliss, it’s now matured to a mango funk. I will do a more in depth look at each strain after dry. Jack #2 is starting to pop fresh nanners. I think it is from stress due to lack of nutrients and/or heat stress from where it is in the tent. Both jacks are feeding really hard I’ve noticed. If these bananas get any worse I will just harvest early. Blueberry #1 is developing miniature seeds in its calyx’s and is starting to foxtail like crazy. It almost looks like it’s reveging. Earlier in the season I pulled off an entire bud that was covered in developing seeds but I couldn’t find anymore after that. I will likely find a few bag seeds in this pheno and Jack #2. Blueberry #2 is still terpless and frostless but it’s really starting to fill into it’s structure now. It’s getting impressively dense but that all it has going for it. This one needs to go 65-70 days at least. BAOGC #1 is so beefed up and chunky I love it. The main cola will be a good 6 grams and the lowers are thick gram nugs too. I will let this one go until day 65 BAOGC #2 is much smaller but a super hard feeder. It was one of the first to start yellowing. This pheno is pretty average in my opinion. It stacks a little tighter but has small buds TWOG #1 has this strange velvety look to it’s frost, something I’ve never really seen before. Although it’s a little on the leafy side. It filled out super early and is ready to harvest now. Both are fading out with black streaks on the leaves. TWOG #2 checks every box for quality so far. This might be the perfect strain and I’m sad I didn’t get a clone of it. The only thing wrong with it is the long trichome stalks and lack of resin heads. It is also an early finisher. I will probably take both TWOGs down on the 21st. Black garlic is just mouthwatering. This plant literally looks wet with resin. It was super airy at first but slowly filled out to the point it’s one of the denser plants in the tent. Cant wait to smoke this stuff. (Day 63) Well, every plant in here is looking done except the jacks and blueberry #2. Since I’m harvesting my other tent tomorrow I might as well give everything the chop before I risk bagseeds. I’m going to give a final watering right now and harvest tomorrow. I’m going to be drying in my flower tent kept between 60-65F and 60-65% RH. I will do a full plant hang to extend the dry time for as long as possible. Guess that’s a wrap then. I will give a detailed breakdown of my errors and final thoughts on the run next week after the dry is completely done. ✌️
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@Lazuli
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So i had a lockout mid flower, i should have flushed earlier but in the end the buds got dense and fat
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@Kanokpalm
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After my 1st Scroging it's not bad to me 😁 but now she look too hot and Nitrogen too much I flushing and waiting to look forward 😅
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@ProKush27
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By the start of the week I’ve noticed magnesium deficiency on plant A and B, so I started adding Biobizz Calmag on Froglord’s kind recommendation. Otherwise I started slow defoliation process and I’m currently removing around two leaves per day. Plants definitely grew larger than expected but I’m not mad :D. They’re taking a bit longer, but it should be worth it. I’m expecting harvest on plants C and D soon.
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@Jayda
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I only have a video and a few pictures for this week because I was on vacation. But the person who watered my plants made a video for me. Ganja is getting LST, Snoopy is being left naturally growing because she needs the height for the spot she's at. Both are doing very well. Unfortunately they got attacked by wasps, but they're pushing through the stress. Ganja got attacked a bit worse.
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Still have these ladies in there Solo cups will most likely pot these girls this week Finally moved these ladies over to there pots looking good for now Oh yea no nuts just yet still going with PH bal water
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During the middle of this week I decided to stop the outward training of the branches & the allow vertical growth for beginning bud site formation . I don’t want to miss the beginning flower stretch kinda need it 😂. Decided to break the apical dominance of the main stem by LST’ing down . I noticed it was leagues ahead of the rest of the plant because it hung over the side of the pot so since I need to start slowing it’s vertical growth I figure now Is also time to get the rest of the canopy to catch up leaving me to space things accordingly later when/if necessary . Also decided to go ahead and do my 1st & last additional feeding since these girls where planted all I’ve had to do this grow was water when dry & train her to the best of my abilities. Week 6 on the GreenSceene in the books 📚 thanks for stopping by .
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@Laxzeus32
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Started trimming a few leaves blocking bud sites and continued to tie down tallest growth. I’ve never used LST to this extent, but I’m a disciple now. Tremendous shape creating space for new growth still. At this point, I learned about the importance of dark hours for bud growth. In case it helps someone: flower growth and later, thc, is boosted and triggered by dark time. During veg for an auto, go full blast with lights. But those flowers boost at night to protect themselves from harsh UV daylight. Swear to God, after months of reading journals and articles, I didn’t realize that until recently.
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@CalGonJim
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9/15 12AM MONDAY!!! THEY ARE ALL DOING GREAT!!! VERY HEAVY AMINOS YESTERDAY, NO DAMAGE. 9/15 11:24PM. In plant cells, glutathione S-transferases (GSTs) act as transporters, facilitating the movement of anthocyanins from the endoplasmic reticulum (ER) to the vacuole for storage, though their exact mechanism is still being studied. The synthesis of glutathione (GSH) itself occurs in the cytosol of mammalian cells through two ATP-requiring enzymatic steps, while anthocyanins are synthesized via a separate phenylpropanoid pathway 9/15 11:42PM glutathione metabolism glutathione S-transferases plantsThinkingKicking off 5 searchesLooking at 71 sitesPutting it all together In plants, glutathione S-transferases (GSTs) are a diverse family of enzymes integral to glutathione (GSH) metabolism, primarily functioning in detoxification and stress response. The core of this process involves GSTs catalyzing the conjugation of the tripeptide GSH with various toxic compounds, or xenobiotics, making them less harmful and easier to sequester or transport. Glutathione (GSH) metabolism in plants GSH metabolism is a tightly regulated process that maintains cellular redox balance and protects against stress. Biosynthesis: GSH is synthesized in two adenosine triphosphate (ATP)-dependent steps:(gamma )-Glutamylcysteine synthetase (GSH1) joins L-glutamate and L-cysteine to form (gamma )-glutamylcysteine. In Arabidopsis, this enzyme is located exclusively in the chloroplasts.Glutathione synthetase (GSH2) adds glycine to (gamma )-glutamylcysteine to produce GSH. This enzyme is found in both the cytosol and the chloroplasts.Oxidation and reduction: GSH exists in two forms: a reduced monomer (GSH) and an oxidized disulfide dimer (GSSG).Oxidation: In the process of scavenging reactive oxygen species (ROS), GSH is oxidized to GSSG.Reduction: Glutathione reductase (GR) uses NADPH to reduce GSSG back into active GSH, which is essential for maintaining a high GSH-to-GSSG ratio inside the cell.Degradation: Glutathione can be degraded in the cytosol, apoplast, and vacuoles by (gamma )-glutamyltransferases (GGTs) and other peptidases, allowing for recycling of its amino acid components.Transport and compartmentalization: While synthesis occurs in the chloroplasts and cytosol, transporters move GSH and its conjugates throughout the cell, including to the mitochondria, peroxisomes, and vacuoles. Functions of glutathione S-transferases (GSTs) GSTs are a large, ancient gene family with diverse roles that extend beyond detoxification. The primary functions involving GSH are: Detoxification of xenobiotics and heavy metals: GSTs catalyze the conjugation of the thiol group of GSH to a wide range of electrophilic and hydrophobic substrates, including herbicides, pesticides, and heavy metals. The resulting GSH-conjugates are then recognized by ATP-binding cassette (ABC) transporters and sequestered in the vacuole, reducing their cellular toxicity.Protection from oxidative stress: Stress conditions like drought, salinity, and high light increase levels of ROS, which cause lipid peroxidation. 🚨Some GST isoforms have glutathione peroxidase (GPOX) activity, using GSH to reduce toxic lipid hydroperoxides to less damaging alcohols, thereby protecting cell membranes.Defense against pathogens: During pathogen attacks, GST activity increases to detoxify microbial toxins and secondary defense-related compounds. This helps to bolster the plant's resistance response.Metabolism of endogenous compounds: GSTs play roles beyond immediate stress response by participating in the normal metabolic processes of plants. Examples include:Hormone transport: Some GSTs act as binding proteins (ligandins) that transport plant hormones like auxins within the cell.Metabolite transport: Specific GSTs facilitate the transport of important compounds like flavonoids and anthocyanin pigments into the vacuole.Tyrosine degradation: The zeta GST class (GSTZ) catalyzes a critical step in the breakdown of the amino acid tyrosine.Redox signaling: By influencing the GSH/GSSG ratio and interacting with plant hormones, GSTs can regulate cellular signaling pathways that control growth and stress response. 🚨GSTs and plant stress response The expression of many GST genes is highly inducible by various environmental and endogenous cues, making them key players in a plant's ability to adapt to adverse conditions. Abiotic stress: Drought, salinity, heavy metals, and extreme temperatures all trigger increased GST expression, which helps plants manage resulting oxidative damage. Overexpression of specific GST genes has been shown to enhance stress tolerance in transgenic plants.Herbicide resistance: The ability of crops and weeds to detoxify herbicides through GST-catalyzed conjugation is a well-studied example of GSTs in stress adaptation. Herbicide safeners, chemical agents that protect crops from herbicide injury, work by boosting the activity of these GST enzymes.Developmental processes: Studies have linked the expression of certain GST genes to specific stages of plant development, such as fruit ripening, root and stem development, and flower formation. "" 9/16 12:32am AI Overview In plants, phenylalanine is the precursor for anthocyanin synthesis, a process that involves a multistep pathway in which glutathione (GSH) plays a critical role in the transport of the final pigment to the cell vacuole. Phenylalanine initiates anthocyanin synthesis The biosynthesis of anthocyanins begins with the amino acid phenylalanine, which is produced via the shikimate pathway. The conversion process, known as the phenylpropanoid pathway, involves a series of enzymatic reactions: 1. Phenylalanine ammonia-lyase (PAL): This enzyme catalyzes the first committed step of the pathway, converting L-phenylalanine into trans-cinnamic acid. 2. Downstream enzymatic reactions: A series of additional enzymes, such as chalcone synthase and chalcone isomerase, convert the intermediate compounds into unstable anthocyanidins. 3. Glycosylation: Glycosyltransferase enzymes stabilize the anthocyanidins by adding sugar molecules, creating the final, stable anthocyanin pigments. 4. Glutathione is crucial for anthocyanin transport After synthesis, glutathione is essential for transporting anthocyanins for storage. * Glutathione S-transferases (GSTs): These enzymes bind to the newly formed anthocyanins in the cytoplasm. This binding is a key step that facilitates the transport of the anthocyanin-GST complex across the tonoplast (the vacuolar membrane) and into the vacuole. * Vacuolar storage: Once inside the vacuole, the anthocyanins accumulate and provide color to plant parts, such as flowers, fruits, and leaves. * Catalytic role: Recent research has also found that certain GSTs have a catalytic role in anthocyanin synthesis. They can catalyze a dehydration step to form specific anthocyanidins, significantly boosting production in engineered systems. * The process in summary The synthesis and accumulation of anthocyanins involve a coordinated process of multiple steps: 1. Production from phenylalanine: The amino acid phenylalanine enters the phenylpropanoid pathway, where enzymes convert it into the basic flavonoid structures. 2. Formation of anthocyanidins: Further enzymatic modifications produce the colored but unstable anthocyanidins. 3. Stabilization and transport with glutathione: These anthocyanidins are stabilized by glycosylation and then bound by GSTs (which use glutathione). This binding enables their transport into the vacuole for storage and visible pigmentation. 9/15 12:46AM https://pmc.ncbi.nlm.nih.gov/articles/PMC7238016/ 9/16 1:30AM BKO is looking great!!! Conclusion The “butter frosting” resin on Cookie Apple F1, healthy yellow-green fusiform, and Blueberry KO’s pigmented cotyledons show your anthocyanin-glutathione-phenylalanine strategy is working—phenylalanine drives synthesis, glutathione ensures transport. Tweak amino acids to 100–150 mg/L to reduce tip burn. 9/16 3:34am 9/16 4:31AM Anthocyanin glutathione synthesis phenylalanine proline tmg powder relating current project: * Phenylalanine is a precursor: Phenylalanine is an amino acid and the starting point for the phenylpropanoid pathway in plants. * Anthocyanin synthesis: This pathway creates various secondary metabolites, including the flavonoid pigments known as anthocyanins, which give plants their red, purple, and blue colors. * Pathway activation: Multiple enzymes, such as phenylalanine ammonia-lyase (PAL), catalyze the conversion of phenylalanine into the building blocks for anthocyanin. * Anthocyanin and glutathione synthesis * Glutathione S-transferase (GST): This enzyme is crucial for synthesizing anthocyanins in plants. It transports anthocyanins into the cell's vacuole for storage. * Glutathione (GSH) production: Anthocyanins can promote glutathione synthesis in certain cells. For instance, the anthocyanin cyanidin-3-O-β-glucoside (C3G) has been shown to increase the expression of glutamate-cysteine ligase (Gclc), a key enzyme in GSH synthesis. * Antioxidant effect: By upregulating GSH production, anthocyanins contribute to the antioxidant defense system, protecting cells from oxidative stress. * Proline and glutathione synthesis * Shared precursor: In some organisms, the synthesis pathways for proline and glutathione share a precursor molecule called γ-glutamyl phosphate. * Alternative pathway: Research on bacteria and yeast has revealed an alternative, trace pathway where γ-glutamyl phosphate from the proline synthesis pathway can be diverted to produce the glutathione precursor γ-glutamylcysteine. * Oxidative stress response: Studies in mouse oocytes show that supplementing with proline upregulates genes related to glutathione synthesis (Gclc and Gclm), increases glutathione levels, and reduces oxidative stress. * TMG powder, methylation, and homocysteine * Methyl donor: Trimethylglycine (TMG), or betaine, is a potent methyl donor, meaning it provides methyl groups needed for various biochemical processes in the body, including the methylation cycle. * Homocysteine regulation: One of TMG's primary functions is to convert the amino acid homocysteine into methionine. This helps regulate homocysteine levels, which is important for cardiovascular health. * TMG and proline interaction: In plants and some organisms, TMG and proline act as compatible solutes or osmoprotectants, helping cells stabilize against osmotic stress like drought or salinity. However, in human biology, TMG mainly functions through methylation, while proline is involved in different metabolic and antioxidant roles. * How they all relate The listed components are connected through several overlapping metabolic and regulatory pathways: * Anthocyanin synthesis starts with phenylalanine. * Anthocyanins can promote glutathione synthesis via upregulation of key enzymes like Gclc. * Glutathione synthesis can be influenced by the proline synthesis pathway, as they share an intermediate in some contexts. * TMG powder supports the methylation cycle, which helps regulate homocysteine levels. While TMG and proline serve similar protective roles in some organisms, their primary human metabolic functions differ, with TMG focusing on methylation and proline having distinct roles in antioxidant response and metabolism 9/17 217am Die Hard Christmas Grow 9/18, 11:34 AM. I ordered some square saucers that were cartoonishly too small but they fit inside the AC infinity germination kit and they fit with the Bud Cups perfectly really nice so it’s not a total loss. 9/18 11:45AM mix. Foliar Spray, the rest of the mix ec 0.46 Mixed up Aminos first and separate and use 16 oz for foliar spray. Then mixed up: Root: 1 mL/L Connoisseur A & B GROW, .2 mL/L CaliMagic, .2 mL/L Purpinator. Setria Glutathione: 150 mg/L(Brand: Emerald 250mg capsule.) TMG: 150 mg/L = (Brand Nutricost) Phenylalanine: 150 mg/L (Brand Nutricost) Proline: 150 mg/L (Brand Nutricost). 9/18 228PM AI Overview Glutathione influences plant colors by regulating the accumulation of pigmented compounds, primarily anthocyanins. The tripeptide accomplishes this through its role in transporting pigments within plant cells and in protecting against environmental stresses like UV radiation that can cause oxidative damage. Transporting pigments into plant cell vacuoles Glutathione works with a class of enzymes called Glutathione S-transferases (GSTs) to transport pigments like anthocyanins into the vacuole for storage. Anthocyanin transport: In plants with pigmented tissues, such as purple grapes or red flowers, glutathione-conjugated pigments are transported by GSTs across the tonoplast membrane into the vacuole. This process is crucial for the stable accumulation of pigments. Genetic manipulation: Research shows that manipulating specific GST genes can alter a plant's pigmentation. For instance, silencing a particular GST gene in purple grape hyacinths caused their petal color to shift to a lighter shade of purple. Similarly, defective GST genes in carnations resulted in pale-colored flowers. Protecting against UV light and stress Glutathione helps regulate plant pigmentation in response to environmental factors, especially UV-B radiation. Activating flavonoid production: When plants are exposed to UV light, a surge in glutathione triggers the expression of genes involved in producing flavonoids. Flavonoids, including anthocyanins, can act as protective sunscreens for the plant, and their increased synthesis and accumulation can alter visible coloration. Balancing oxidative stress: Intense UV-B radiation increases reactive oxygen species (ROS) in plants, which can cause oxidative damage. Glutathione is a master antioxidant that helps detoxify these ROS, preventing cellular damage that can affect a plant's pigment-producing mechanisms. Indirectly influencing plant colors By regulating cellular redox status and interacting with other molecules, glutathione also affects pigment expression in more indirect ways. The xanthophyll cycle: As part of a plant's antioxidant system, glutathione helps maintain the reduced state of other protective antioxidants like tocopherol and zeaxanthin. Zeaxanthin is a carotenoid pigment involved in the xanthophyll cycle, which helps dissipate excess light energy. Redox signaling: The balance between reduced glutathione (GSH) and oxidized glutathione (GSSG) is a key cellular signal for stress response. A shift in this ratio during environmental stress can influence the production of secondary metabolites like pigments, allowing the plant to adapt. " 9/19 1:41AM AI Overview The key difference is that anthocyanins are the sugar-containing form (glycosides) of pigments, while anthocyanidins are the sugar-free form (aglycones). Anthocyanidins are the foundational molecules, and when a sugar molecule attaches to them, they become anthocyanins, which are more stable and water-soluble, making them the forms found naturally in plants, such as berries and purple vegetables. Anthocyanidin (Aglycone) Structure: The basic, sugar-free molecule of the anthocyanin structure. Location: Not found freely in nature but is the core component that is then glycosylated. Properties: Color changes with pH, being visible in acidic conditions but colorless in basic conditions. Examples: Cyanidin, delphinidin, pelargonidin, peonidin, petunidin, and malvidin. Anthocyanin (Glycoside) Structure: Consists of an anthocyanidin linked to one or more sugar molecules. Location: Found in the vacuoles of plant cells. Properties: Water-soluble and are the pigments responsible for the red, purple, and blue colors in plants. Function: The sugar attached provides stability, allowing for accumulation in plants and providing antioxidant properties. Examples: Cyanidin-3-glucoside and other derivatives like acylated anthocyanins. " 9/19 2:43AM I also saw a good mans immediate accent into Heaven, that perspective matters too. no less angry about it though. 9/19 10AM Heavy Amino spray 250mg each in 1L of Setria Glutathione and Phenylalanine 9/19 10:10PM The sons and daughters of americas real terror organization carried out the last horror show, and the one before that and before that. It's not a foreign country, it's always the anti white anti human black sheets and badges that did this. 9/19 10:43PM AI Overview Phenylalanine and glutathione contribute to plant colors through different biochemical pathways . Phenylalanine is a precursor for the pigments themselves, primarily anthocyanins, while glutathione is involved in the transport and stabilization of these pigments within the plant cell. Phenylalanine: The pigment precursor The source of aromatic compounds: Phenylalanine is an aromatic amino acid and the starting compound for the phenylpropanoid pathway in plants. This pathway produces a vast number of secondary metabolites, including anthocyanins, which give many plants their red, purple, and blue colors. Color enhancement: Research has shown that increasing the amount of available phenylalanine can lead to more intense red coloration in some fruits, such as mangoes and apples. Pathway stimulation: Phenylalanine ammonia-lyase (PAL) is a key enzyme in this pathway that converts phenylalanine into precursors for anthocyanin biosynthesis. An increase in phenylalanine levels stimulates this entire process. Glutathione: The pigment transporter Anthocyanin transport: After anthocyanin pigments are synthesized in the cell's cytoplasm, they must be transported into the central vacuole for storage. Glutathione S-transferases (GSTs) are a family of enzymes that facilitate this process. Color intensity: A functional GST is essential for proper anthocyanin accumulation. Mutations in GST genes can result in a significant decrease in color intensity, as seen in the pale or white flowers of certain gentian mutants. Mechanism of action: The GST binds to the anthocyanin pigment and moves it from the cytoplasm into the vacuole. If the GST is defective, the pigment cannot be transported correctly, leading to a loss of coloration. Summary of interactions The roles of phenylalanine and glutathione are distinct but cooperative in producing plant colors: Phenylalanine provides the essential building blocks for creating the colored compounds (anthocyanins). Glutathione, with the help of GSTs, ensures these colored compounds are correctly moved to their storage location (the vacuole). This cooperative system explains why mutations or deficiencies in either process can lead to reduced or altered coloration in plants." 9/19 10:51PM AI Overview. Trimethylglycine (TMG) supports the production of glutathione, a vital antioxidant . However, there is no evidence to suggest a direct relationship between these supplements, the amino acid phenylalanine, and the colors of plants. The concepts are linked indirectly via complex biological processes. Trimethylglycine (TMG) and glutathione TMG and glutathione are connected through the body's methylation cycle. TMG as a methyl donor: TMG plays a critical role in the methylation process by donating a methyl group, which helps convert the harmful amino acid homocysteine back into methionine. Support for glutathione production: This methylation cycle, which is supported by TMG, is essential for producing glutathione. Glutathione is a powerful antioxidant that protects against cellular damage and is crucial for detoxification. Supplementation considerations: TMG supplements are sometimes taken alongside other supplements to support health, though consultation with a healthcare provider is recommended. Phenylalanine and the methylation cycle Phenylalanine is an essential amino acid, but its role is distinct from the TMG-glutathione process. Essential nutrient: Phenylalanine is a key nutrient for cellular metabolism. Potential interactions: A separate medical study on experimental hyperphenylalaninemia (abnormally high phenylalanine levels) in chicks observed a decrease in other amino acids in the brain, including those involved in the glutathione pathway. This demonstrates how excessive levels of one amino acid can potentially influence others, though this does not represent a typical interaction. Plant colors The connection between the supplements and plant colors is purely conceptual, as the colors are determined by completely different biological processes. Anthocyanins: The colors of many plants, including red, purple, and blue flowers, come from pigments called anthocyanins. Glutathione in plants: While plants contain glutathione as an antioxidant to combat stress, it influences color by regulating the transport and accumulation of anthocyanin pigments, not by being a pigment itself. TMG and phenylalanine in plants: Plants contain TMG, which functions as an osmoprotectant (protecting against osmotic stress). They also contain phenylalanine, but these substances do not directly determine the plant's visible color." 9/19 11:21PM. !!!!!! this was pointless and im dumber for having read it. !!! Light intensity and spectrum affect metabolism of glutathione and amino acids at transcriptional level: https://pmc.ncbi.nlm.nih.gov/articles/PMC6938384/ 9/20 11:08 AM the seedlings and the four autos are doing just great. The amino spray with phenylene and glutathione really had nice effects no burning nice solid growth even seedlings from basil lavender various lettuce all are perfect.🚨🚨🚨👍👍👍👍👍 9/21 2AM I AM BECOME ANTHOCYANID!!! ITS WORKING AND ON A SEEDLING I SEE THE GELATO COLLORS IN BLUEBERRY KO AND THE LEAF SHAPE OF BUBBLES BLUEBERRY,!!!
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@Lazuli
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i vegged with lower watts and it seems they stay more compact
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@J_diaz420
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Muy contento con el resultado de esta hermosa genética llena de resina , un olor muy rico, agradable al fumar y muy potente, cumple con creces mis expectativas 👍👨‍🌾🏻🍀
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@Ratch33
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All went steady! Re-Adjusted my Fan positions & velocity! Full 900W running again - Lights were moved further from canopy to decrease leaf temperature. I pruned some affected leaf tips/fingers Pest & Mould prevention H2o2 Lets hope for the best
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@Kirsten
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So she's grown a lot since last week! The mutation is looking a little crazy still and I attempted LST and messed it up totally. Im sure it'll all work out in the end but I really would like to start widening the plant and use some horizontal space while we're still in veg. This could potentially be my longest grow, in duration. So I'll definitely need to train ASAP anyway. Here is what I did this week. 10.7.25: I watered with 2ltrs of dechlorinated water PH'd to 5.9 and containing the following nutrients; 💜 1/2 TSP Cal-Mag 💜 1/2 TSP Mega Crop Part A PH: 5 9 PPM: 1510. Thanks for checking in and hanging out this week 💚✌️🍃😊🌱
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@DrGanj
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COntinued to apply small amounts of pressure with LST but aside from that, letting her do her thing. Had to leave her for a few days and she got dehydrated, after a feed she perked up again but she's now started sucking all the nutes out of her lower growth. She has a lot so I'm hoping it doesn't affect the harvest. Would have preferred this to begin with my flush. For more content on all my grows please check out my Instagram! Link is on my profile!
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@RoyColt
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Day87 25/02 4 lt ro water -16 ml bloomA -16 ml bloomB -8 ml big bud -8 ml nirvana, Total 1080 ppm, ph 6,2 Drain 200 ml, 1180 ppm. *Day89 Continue Defoliation and LST. Day89 27/02 4 lt ro water - 2ml sensi cal mag extra, Total 120 ppm, ph 6,1 Drain 600ml, 950 ppm. *Day91 continue defoliation, 1100 PPFD. Day91 01/03 4lt ro water -16 ml BloomA -16ml BloomB -8ml Big Bug -8ml Nirvana, Total 1120 ppm - Ph 6,2 Drain 500ml, 980 ppm.
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@Pjm70
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She seems to be budding nicely. However in the past few days all her lower leaves are turning yellow. I know this plant is a heavy feeder and I thought I was feeding enough. She is not growing anymore, but she looks like she has a nitrogen deficiency. I do use the same water which has a low 6 ph. Today I gave her water with a 7.0 ph. Just to get her out the constant ph zone she has been in. 9/17 fed 15 MLS of foxfarm Tiger Bloom 9/19 fed 15 MLS of Tiger Bloom. 9/21 fed 4 tablespoons Foxfarm Big Bloom, 1/2 Teaspoon Foxfarm Beasti Bloom and 12 MLS of Foxfarm Grow Big. Per 2 gallons. Day 98 She has a lot of yellow lower leaves. So I hit her up with a little grow big. From what I read, she still needs some nitrogen. Lower leaves turning yellow. Think it's a little too early for that. She is a big eater and it looks like she has not been getting enough base nutrients. Her pot is very heavy, so now I'm going to hold back water until she drys a little. Getting cold out at night. Every morning I go out and she was drenched in dew. This plant I'm counting on giving me bud until at least spring. So now I have been sneaking her in the garage at night with 47 percent humidity. She seems to be very happy about this. Right now 9 pm 60 degrees, humidity 71. Humidity is way too high for her to be sitting outside. Her buds are fattening up. Some time last week I gave her a feeding of just Foxfarm Beasti Bloom. Beasti has no nitrogen and she was not happy about that. A lot of lower leaves turned yellow. So I gave her Foxfarm Tiger Bloom and that seemed to make her happy again. Will not make that mistake again.
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@ReinDeer
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The plants are growing nicely and small preflower pistils are emerging slowly and it seems all of them will be female 😀 I've started adding them Cal Mag solution as an addition to my existing package as the leafs were showing a slight signs of deficiencies but nothing major. We'll be in the flowering stage next week for sure, until then wish you all a nice week😉